SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4377-9
Continuous molecular monitoring on dynamic biological tissues demands electrochemical interfaces that maintain charge transport and reactivity under large mechanical strain. Existing stretchable platforms based on conductive elastomer composites or serpentine metal interconnects suffer from strain-induced disruption of percolation networks, active area fluctuation, and interfacial charge-transfer kinetic degradation, producing baseline drift and signal distortion that preclude reliable operation on skin, stomach, or intestine. Xu et al. (Science, 2026, 392) introduced SIRES, an intrinsically stretchable electrochemical interface that couples a strain-resilient liquid-metal elastomeric architecture with a Randles-circuit-informed design strategy. The platform preserves stable charge transport and electrochemical reactivity during large deformation, enabling high-fidelity multiplexed molecular sensing across diverse dynamic biological surfaces. This highlight analyzes the material-circuit co-design framework, evaluates its performance limits against conventional stretchable electrodes, and identifies remaining barriers in fabrication scalability, encapsulation reliability, and system-level integration. The work establishes a universal design paradigm for soft bioelectronics, with direct implications for wearable and implantable diagnostic translation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4432-9
Sodium vanadium phosphate (Na3V2(PO4)3, NVP) with NASICON structure is a promising cathode for sodium-ion batteries but suffers from low electronic conductivity and a high energy barrier for the V4+/V5+ redox couple, limiting practical energy density. A medium-entropy tuning strategy yields the multi-element substituted Na3.2V1.5Cr0.1Fe0.1Mn0.1Ni0.1Ti0.1(PO4)3 (ME-NVP). Entropy modulation tailors the microscopic electronic structure, enabling reversible V4+/V5+ redox at 4.0 V. Analyses reveal a synergistic diffusion mechanism that accelerates Na+ transport and enhances multiple-electron redox kinetics. Ex-situ X-ray diffraction confirms highly reversible structural evolution during cycling. The ME-NVP cathode delivers 116.8 mAh g-1 at 0.1C and retains 83.9% of initial capacity after 1000 cycles at 20C, with excellent performance from -12 to 50 °C. This work demonstrates that configurational entropy regulation unlocks high-energy polyanion cathodes for advanced sodium-ion batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4490-y
The development of efficient enzyme mimics for CO2 hydration remains a critical challenge for industrial carbon capture. This study reports a bioinspired three-dimensional Zn-coordinated organic framework (Zn-SOF) synthesized via solvothermal assembly of a salen-based ligand with zinc ions. The resulting material exhibits a carbonic anhydrase-like active site with a Zn-N2O2 coordination environment, as confirmed by X-ray absorption spectroscopy. The Zn-SOF demonstrates a CO2 hydration rate of 3.2 × 10^-3 s^-1 per active site, representing a 12-fold enhancement over the homogeneous Zn-salen complex and approaching 8% of native carbonic anhydrase II activity. The catalyst maintains structural integrity over 10 consecutive cycles with <5% activity loss and operates optimally at 25–40 °C and pH 7.4–9.0. Kinetic analysis reveals a Michaelis-Menten constant (Km) of 28 mM for CO2 and a turnover number (kcat) of 4.1 s^-1, outperforming benchmark Zn-based mimics. The framework's hierarchical porosity (BET surface area: 620 m2 g^-1) facilitates substrate diffusion, while the hydrophobic pore environment enhances CO2 affinity. This work establishes a design paradigm for robust, recyclable enzyme mimics that bridge the gap between homogeneous catalysts and natural enzymes, offering a scalable route for post-combustion CO2 capture.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4477-7
The rapid demand for high-energy-density lithium batteries necessitates advanced solid-state electrolytes (SSEs) to overcome the safety and performance limitations of conventional liquid counterparts. Macrocyclic compounds, with their well-defined cavities, programmable binding sites, and tunable self-assembly, have emerged as powerful molecular regulators for designing next-generation SSEs. This review examines recent advancements in macrocyclic compound-based SSEs by categorizing their functions into four fundamental supramolecular regulation paradigms: cation-centered regulation (e.g., crown ethers), anion-centered regulation (e.g., calixarenes and calixpyrroles), channel-dominated transport (e.g., cyclodextrins), and hybrid regulation (e.g., cucurbiturils). We elucidate how these macrocycles precisely control ion coordination, modulate migration dynamics, and reshape interfacial chemistry, leading to enhanced ionic conductivity, improved Li+ transference numbers, suppressed lithium dendrite growth, and superior interfacial stability. While each paradigm offers distinct advantages, the most promising SSEs often leverage synergistic combinations of these strategies. Finally, we highlight the remaining challenges, including synthetic complexity and multi-objective performance trade-offs, and propose future research directions for developing highly efficient and durable macrocycle-based solid-state lithium batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4483-x
The referenced literature comprises five peer-reviewed studies published between 2025 and 2026 in Nature Materials, Journal of the American Chemical Society, Nature Communications, and Science China Materials. These works collectively address the persistent trade-off between open-circuit voltage (Voc) and short-circuit current density (Jsc) in organic photovoltaics (OPVs). Tao et al. (Nat Mater, 2026) demonstrate that narrow-bandgap nonfullerene acceptors engineered to exhibit low energetic disorder achieve power conversion efficiencies (PCEs) exceeding 21%, primarily by suppressing non-radiative recombination losses. Westbrook et al. (JACS, 2025) establish that solid-state packing motifs govern exciton delocalization and photophysics in nonfullerene acceptors, providing a structural handle for reducing energetic disorder. Jiang et al. (Nat Commun, 2025) show that photoluminescent delocalized excitons in donor polymers facilitate efficient charge generation, linking exciton coherence to device performance. Zhang et al. (Nat Commun, 2026) employ synergistic steric hindrance and chlorination to realize binary OSCs with low energy loss, achieving high Voc without sacrificing photocurrent. The cumulative findings indicate that molecular design strategies targeting low energetic disorder and controlled solid-state packing can overcome the longstanding efficiency ceiling of ~20% in OPVs. These results have direct implications for the commercial viability of solution-processed, lightweight, and flexible solar cells, though scalability and long-term stability remain to be validated under industrial manufacturing conditions.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4177-3
Chirality profoundly influences tumor therapy by regulating key physiological processes, yet the link between chirality and therapeutic properties of atomically precise metal nanoclusters (NCs) remains poorly understood. Atomically precise Au25 NCs protected by chiral cysteine ligands (L-Au25(cys)18, D-Au25(cys)18, and Rac-Au25(cys)18) were constructed and systematically investigated to elucidate the association between chirality and tumor therapeutic performance. Although no significant difference in enzyme-like activity was observed among the three NCs, Rac-Au25(cys)18 exhibited enhanced reactive oxygen species generation under 808 nm laser irradiation, achieving superior phototherapeutic effects in both in vitro and in vivo tumor models. The chiral Au25 NCs induced distinct cell death pathways: L-Au25(cys)18 primarily triggered ferroptosis, D-Au25(cys)18 induced both ferroptosis and apoptosis, and all three NCs activated disulfidptosis. In vivo, tumor inhibition rates for L-Au25, D-Au25, and Rac-Au25 groups were 46.7%, 42.5%, and 68.3%, respectively, with no significant body weight fluctuations and minimal hepatorenal toxicity. Hematological and histopathological analyses confirmed favorable systemic biocompatibility. This work clarifies the correlation between chiral structures and tumor therapeutic performance of gold NCs, providing experimental insights and theoretical support for the design of novel chiral nanomaterials and optimization of precise tumor phototherapeutic strategies.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4272-3
Ruthenium (Ru)-based alloys are promising alternatives to commercial Pt/C catalysts for the hydrogen evolution reaction (HER) owing to their low cost and favorable hydrogen adsorption properties. However, the sluggish water dissociation on Ru catalysts remains a major kinetic bottleneck in alkaline solutions. Herein, we report a rare earth (RE) dilute alloy strategy by incorporating a trace amount of cerium (Ce, ~1 at%) into a RuCu alloy to promote interfacial water activation. The oxophilic Ce sites strengthen H2O adsorption and reduce the energy barrier for water dissociation, thereby accelerating the Volmer step during alkaline hydrogen evolution. Consequently, the RuCuCe catalyst delivers 10 mA cm−2 at an overpotential of only 18 mV in 1.0 M KOH and maintains stable operation for over 100 h at 500 mA cm−2 in a membrane electrode assembly. In situ electrochemical impedance spectroscopy and pH-dependent measurements verify the facilitated Volmer process induced by Ce incorporation. Temperature-dependent analysis further shows that the apparent activation energy decreases from 47.4 kJ mol−1 for RuCu to 26.4 kJ mol−1 for RuCuCe, consistent with enhanced water dissociation kinetics. This work establishes RE dilute metal alloys as an effective platform for boosting the intrinsic activity of Ru-based alloy catalysts, in which RE incorporation promotes water dissociation while inducing charge redistribution in the alloy matrix.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4260-5
Lithium-sulfur batteries (LSBs) are recognized as a leading candidate for next-generation energy storage due to their high theoretical specific capacity (1675 mAh g⁻¹). However, the shuttle effect of lithium polysulfides (LiPSs) severely limits cycle life and energy efficiency. Here, we report a multi-interface engineering strategy employing a MnO₂-TiO₂@Ti₃C₂ MXene (MT@MX) heterojunction, synthesized via a facile redox reaction between MXene and KMnO₄, to modulate bidirectional polysulfide conversion. The 2D structure with high conductivity and abundant heterogeneous interfaces facilitates fast ion/electron transfer, reduces reaction energy barriers, and enhances adsorption via d-band center effects. The stepped built-in electric field (BIEF) in MT@MX lowers the migration energy barrier of LiPSs from catalytic MXene to TiO₂ and then to adsorptive MnO₂, enabling reversible migration across multi-interfaces. Optimized heterointerfaces synergistically integrate adsorption, diffusion, and catalytic conversion, yielding excellent cycling stability even at a high sulfur loading of 6.4 mg cm⁻². This work demonstrates that constructing heterojunctions with stepped BIEF offers a feasible approach to modulate interfacial diffusion and provides a new design strategy for high-performance LSB electrocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4339-7
Neuromorphic computing demands energy-efficient synaptic devices that emulate biological plasticity. Optoelectronic memristors based on colloidal quantum dots (QDs) offer tunable bandgaps and solution processability, yet suffer from defect-mediated nonradiative recombination and instability. Here, we report ZnS-passivated CdZnSe core/shell QDs as the active layer in memristive devices, achieving enhanced synaptic emulation and information encryption. Time-resolved photoluminescence (TRPL) decay curves were fitted with a tri-exponential function, revealing that ZnS passivation suppresses defect-related trap states, prolonging the average carrier lifetime from 12.3 ns (CdZnSe) to 28.7 ns (CdZnSe/ZnS). The intensity proportion of the fast decay component (τ1 ≈ 1.2 ns) decreased from 45% to 18%, indicating reduced surface trapping. Devices incorporating CdZnSe/ZnS QDs exhibit stable bipolar resistive switching with an ON/OFF ratio exceeding 10^3, endurance of >10^3 cycles, and retention of >10^4 s. Under 365 nm UV illumination, the devices show light-tunable synaptic plasticity, including paired-pulse facilitation (PPF) with a facilitation index of 180% at a 50 ms interval, and transition from short-term to long-term memory. The memristors successfully emulate essential synaptic functions and are employed in a simple encryption scheme, demonstrating the potential of defect-passivated QDs for secure neuromorphic hardware.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4350-4
Flexible wearable sensors have transformed motion tracking, soft robotics, and human-machine interfaces by enabling precise movement detection and adaptability to curved surfaces. However, conventional composite sensors often face challenges such as limited sensitivity, detection range, linearity, and durability. In this study, we propose a stretchable auxetic sensing textile with a negative Poisson’s ratio (NPR) structure, incorporating reduced graphene oxide (rGO) and carbon nanotubes (CNT) by micro-crack engineering to enhance its mechanical durability and sensing performance. Integrating macro-scale NPR with micro-scale wrinkles, this innovative design achieves a high sensitivity of 11.2 within a wide detection range (0-100%), a more linear sensing range with an R2 value of 0.998, an ultra-low detection limit of 0.5%, and exceptional durability, outperforming conventional wearable sensors. Additionally, the textile sensor boasts excellent moisture permeability (32.7 g m⁻² h⁻¹) and a remarkable NPR value of -0.25, ensuring comfort and adaptability for various wearable applications. Integrated with deep learning algorithms, the auxetic sensing textile demonstrates 98% accuracy in recognizing soft robotic movements at various bending angles. It is capable of capturing both small-scale physiological signals, such as electrocardiograms, and large-scale movements, offering significant freedom of movement and adaptability to complex surfaces.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4360-7
Polarization-sensitive photodetection is critical for advanced optical communication and imaging systems, yet conventional photodetectors suffer from low on-off ratios and limited polarization discrimination. Here, we report gate-tunable PdSe2/WSe2 van der Waals heterostructures that achieve ultrahigh light on-off ratio and polarization-sensitive photodetection. The heterostructure forms a type-II band alignment, enabling efficient charge separation and self-powered operation. By applying a gate voltage, the photoresponse can be modulated, achieving an on-off ratio exceeding 10^6 under illumination. The device exhibits a high responsivity of 1.2 A/W and a specific detectivity of 10^12 Jones at room temperature. Polarization-sensitive measurements reveal a linear dichroism ratio of 2.1 at 532 nm, attributed to the anisotropic crystal structure of PdSe2. The photodetector operates over a broad spectral range from visible to near-infrared (400-1000 nm) with fast response times (rise/fall < 100 μs). The gate-tunable capability allows dynamic control of the photocurrent, enabling adaptive sensing applications. These results demonstrate that PdSe2/WSe2 heterostructures are promising candidates for high-performance, polarization-sensitive photodetectors, offering a pathway for next-generation optoelectronic devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4206-6
Precise patterning of highly ordered organic semiconductor (OSC) thin-film arrays is critical for next-generation electronics. We report a ladder-like polysilsesquioxane (LPSQ) strategy to synthesize two functional analogs with tunable surface energies and robust dielectric properties. These LPSQ dielectrics, functionalized with alkyl or fluoroalkyl side chains, serve dual roles as gate insulators and patterning layers to guide blade-coating of 2,7-dioctyl[1]benzothieno[3,2-b][1]benzothiophene (C8-BTBT). This approach yields highly aligned arrays suitable for three-dimensional integration in flexible electronics. Synergistic combination of dense LPSQ dielectric packing and aligned semiconductor domains leads to excellent organic thin-film transistor (OTFT) performance, achieving approximately four-fold improvement in field-effect mobility compared to conventional silicon oxide dielectrics. Patterned LPSQ dielectrics enable high-resolution C8-BTBT patterning on plastic substrates, supporting 4-inch-scale 3D integration of flexible logic circuits, including inverters (voltage gain >100), NOR gates, and NAND gates. This work provides a scalable route to high-performance, large-area flexible organic circuits.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4192-y
Electrochemical water splitting is pivotal for scalable green hydrogen production, yet its practical deployment hinges on cost-effective electrocatalysts with high activity and durability. This study introduces a low-cost, three-dimensional (3D) nanoporous ZrVFeCoNi material fabricated via chemical dealloying, at merely 0.16% of the cost of Pt. The structure-activity relationship between its microstructure and hydrogen evolution reaction (HER) performance was systematically explored. Lattice defect effects from multiphase intermetallic compounds, combined with multi-metal synergy, optimize H+ adsorption energy and electron transfer kinetics. The 3D nanoporous architecture provides a high electrochemical surface area with abundant active sites, enhancing electrolyte penetration and reducing interfacial mass transfer resistance. Consequently, the ZrVFeCoNi electrode exhibits outstanding HER performance, requiring only a 38 mV overpotential to reach 10 mA cm−2 and maintaining stable operation for 1000 h at 500 mA cm−2. Integrated into a full water electrolyzer (ZrVFeCoNi || IrO2/Ni), the system achieves a cell voltage of 1.60 V at a current density of 400 mA cm−2. Advanced characterization and density functional theory (DFT) calculations reveal that interfacial interactions and charge transfer at heterointerfaces drive catalytic activity, showcasing the potential of 3D nano-structured multiphase intermetallic compounds as high-performance electrocatalysts for green hydrogen systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4183-3
Excessive ultraviolet (UV) radiation poses significant risks to human health, necessitating highly sensitive detection systems. Organic photodetectors (OPDs) offer high sensitivity and tunable spectral response, but their UV performance is constrained by conventional glass/indium tin oxide (ITO) substrates and electrodes, and insufficient photoactive layer responsivity. Here, we report high-performance UV-OPDs achieved through UV-transparent window and active-layer optimization. Replacing glass/ITO with a UV-transparent window comprising a quartz substrate and PH1000 electrode enhances UV transmittance. Integrating the high UV-responsive blend PM6:Y6:PC71BM as the active layer, the optimal ternary UV-OPD exhibits external quantum efficiency (EQE) exceeding 53% across 280–400 nm, with a peak EQE of 78.29% and responsivity of 214.68 mA/W at 340 nm, alongside a rapid response time of 2.6/2.1 μs. This performance represents the best combination of responsivity and response time reported to date in the UV region. We demonstrate the potential of these UV-OPDs for outdoor real-time UV monitoring. This work presents a promising strategy for developing high-performance UV-OPDs through transparent substrate and electrode engineering, and active-layer optimization.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4110-9
Flexible tactile sensors are pivotal for human-machine interaction, yet accurate decoupled sensing of three-dimensional (3D) forces and integration into functional systems remain challenging. Here, we present a piezoresistive 3D force sensor based on ionic hydrogels that detects and analyzes multi-directional forces. The sensor exhibits a linear response to normal forces from 1 to 25 N (R²=0.99) and maintains stable sensitivity for shear forces within 0–4 N. By incorporating both force magnitude and direction, the sensor enables multidimensional password input, expanding traditional one-dimensional passwords into numeric, alphabetic, and Morse code formats. Experimental results demonstrate significant potential for enhancing information security. The sensor's simple structure, mature fabrication, and ease of integration with flexible electronics underscore its practicality. This work addresses the bottleneck of unidirectional sensing in conventional flexible pressure sensors, offering a robust solution for multidimensional force acquisition in human-machine interfaces, soft robotics, and biomechanical monitoring.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3848-7
Conventional heterogeneous photocatalysts often suffer from insufficient light absorption, rapid charge recombination, and a lack of specific reactive sites for efficient photocatalytic oxidation. To overcome these limitations, we propose a molecular polarization engineering approach utilizing structurally well-defined donor (D)-acceptor (A) covalent triazine frameworks (CTFs). The construction of dipole-induced built-in electric fields within the D-A-structured CTFs enables enhanced exciton dissociation and facilitates directional charge transfer. Specifically, the asymmetric A1-D-A2 moiety enhances molecular polarization in the dual-acceptor system CTF-TBT (A1-D-A2), enabling efficient charge separation through multiple electron-withdrawing units. This structural design promotes directional electron transfer toward the secondary acceptor (benzothiazole, A2), while simultaneously concentrating holes on the donor unit. Consequently, the A2 moiety acts as a site for efficient O2 activation via electron accumulation, whereas the highly oxidized donor unit provides strongly positive holes (h+) that facilitate substrate oxidation. Experimental and DFT calculation results confirm that CTF-TBT demonstrates highly enhanced photocatalytic oxidation performance, which can be attributed to its multi-channel charge separation mechanism and spatially separated redox-active sites. This study highlights the effectiveness of molecular dipole engineering in designing heterogeneous photocatalysts with controlled charge transfer pathways and improved redox capabilities. The proposed design principles provide a universal approach for promoting solar-driven chemical synthesis applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3575-4
Halide perovskite memristors, known for their ion mobility, have emerged as strong candidates for computational units in next-generation memory and neuromorphic computing systems. Nevertheless, most memristors are limited to operating in a single mode, either resistive switching or threshold switching. In this work, we overcome this limitation by developing dual-mode α-formamidinium lead triiodide (α-FAPbI3) perovskite memristors with switchable volatile/nonvolatile states, enabled by engineered SnO2 electron transport layers (ETLs). Through molecular interface optimization using 3-(N,N′-dimethylmyristylammonio) propanesulfonate (Z14) and 4,4′-(1,10-phenanthroline-3,8-diyl)bis(N,N′-bis(4-methoxyphen-yl)aniline) (PNL), we achieved exceptional device stability. Volatile devices exhibited >500 switching cycles, while nonvolatile devices surpassed 1000 cycles, both maintaining a high on/off ratio (~10^3). Beyond memory applications, these devices successfully emulated biological functionalities. The volatile mode replicated four key nociceptor characteristics (threshold, relaxation, sensitization, and no adaptation), while the nonvolatile mode demonstrated advanced synaptic plasticity, including paired-pulse facilitation (PPF) and spike-timing-dependent plasticity (STDP). Capitalizing on this dual-mode synergy, we constructed a spiking neural network (SNN) for handwritten digit recognition, achieving a 93% accuracy rate—a significant milestone for perovskite-based neuromorphic systems. This study not only provides a material-level strategy for multifunctional memristor design but also bridges the gap between biological sensing and artificial intelligence, paving the way for adaptive neuromorphic hardware.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3506-3
Metallic glasses (MGs) often suffer from sluggish hydrogen evolution reaction (HER) kinetics in neutral and alkaline media, with their catalytic performance predominantly confined to acidic environments. Herein, we reported a novel thermoplastic forming technique to fabricate a self-supported partially crystallized nanoporous Pt56.2Ni5.2Cu16.8P21.8 metallic glass (C-NPMG). The C-NPMG catalyst delivers ultralow overpotentials of 18.0 mV (0.5 M H2SO4), 42.2 mV (1 M KOH), and 88.0 mV (1 M phosphate-buffered saline (PBS)) at a current density of 10 mA cm−2, outperforming most state-of-the-art non-noble MGs and Pt-based benchmarks across all pH conditions. Notably, it maintains negligible performance decay for over 1000 h in alkaline electrolytes, showcasing superior stability. Experimental and computational analyses reveal that the enhanced HER activity arises from three synergistic effects: (1) the high-specific-surface-area nanoporous architecture that maximizes active site exposure; (2) the formation of crystallite-amorphous interfaces during partial crystallization, which lowers the energy barrier for H2 desorption; (3) the hierarchical super-hydrophilic and super-hydrophobic wettability of the C-NPMG, which optimizes mass transport and prevents electrolyte-induced corrosion. This work establishes a novel design paradigm for developing high-performance, pH-universal HER electrocatalysts by integrating structural nano-engineering and crystallite-amorphous phase synergy in metallic glass systems to overcome the trade-offs between performance and stability in electrochemical water splitting.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3652-2
Existing robotic end-effector gripping technologies often encounter challenges such as poor adaptability to environmental changes, incomplete deformation sensing, and insufficient adhesion stability, which can compromise operational safety and reliability. Here, we present the bio-inspired self-sensing suction cup, in which the core self-sensing capability is achieved by combining high-performance, laser-induced graphene/Ag NWs flexible sensors with a Wheatstone bridge design. The flexible sensors provide high sensitivity, while the Wheatstone bridge circuit enables accurate and stable detection of deformation during the gripping process. Integrated into the octopus-inspired suction cup, this system allows for real-time monitoring of deformation and adsorption stability. The self-sensing suction cup demonstrates good performance across a 0–25 kPa negative pressure range, with outstanding linearity (R2 = 0.993) and high sensitivity (GF = 10.436 kPa−1). Experimental results confirm that the suction cup can achieve stable adsorption under varying loads and enable real-time monitoring of the suction cup status during the gripping process. This design provides a promising solution for intelligent gripping systems, logistics, and object recognition in challenging environments.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3789-x
Wearable sensors have attracted significant attention due to their superior sensitivity, safety, and adaptability compared with conventional detection technologies. However, developing sustainable sensing materials that combine excellent performance with environmental friendliness remains a significant challenge. In this study, Juncus effusus (JE), a natural fiber featuring a unique internal three-dimensional (3D) network structure, was employed as the substrate. Conductive polyaniline was loaded onto the JE structure to impart electrical conductivity, and Ecoflex encapsulation provided high elasticity. Based on this approach, a JE-based resistive flexible sensor (PHE-JE) was successfully fabricated. The PHE-JE sensor exhibits high stability under various strain conditions, along with excellent flexibility and durability. Moreover, benefiting from its complex 3D structure and synergistic material interactions, the PHE-JE sensor enables accurate detection of diverse motion types, showing promising potential for future wearable sensing applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3761-7
Ruthenium-based materials, including metallic Ru and RuO2, are promising electrocatalysts for electrochemical water splitting (EWS) due to their high activity for both hydrogen evolution reaction (HER) and oxygen evolution reaction (OER). However, their practical application is hindered by the relatively strong adsorption of reaction intermediates on Ru surfaces and the oxidative dissolution of RuO2 under operating conditions. This review provides a comprehensive overview of recent progress and challenges in Ru-based electrocatalysts for EWS. We first summarize the fundamentals of EWS, including reaction mechanisms and activity descriptors. Then, we detail typical synthesis methods such as hydrothermal/solvothermal syntheses, organic ligand-assisted syntheses, pyrolysis, acid etching, cation exchange, and molten salt-assisted syntheses. Subsequently, we focus on enhancement strategies, including alloying, doping, structure design, interface engineering, single-atom catalyst design, high-entropy alloy design, phase engineering, and defect engineering, with typical examples illustrating structure-property correlations. Finally, we address remaining challenges and future prospects for the development of efficient and durable Ru-based electrocatalysts for sustainable hydrogen production.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3710-y
Layered transition metal oxide cathodes for sodium-ion batteries (SIBs) suffer from Jahn–Teller distortion of MnO6, Na+/vacancy ordering, and irreversible lattice oxygen loss, causing capacity fading and voltage decay. Here, we report a P2-type material, Na0.67Ni0.3Mn0.6Li0.09Sn0.01O2 (NNMO-Li0.09Sn0.01), co-doped with closed-shell Li+ and Sn4+ ions. Li+ increases the Mn4+/Mn3+ ratio, mitigating Jahn–Teller distortion, and disrupts Ni/Mn ordering, suppressing Na+/vacancy ordering. Sn4+ forms stronger Sn–O bonds (548 kJ mol−1), enhancing bonding between transition metal ions and oxygen, reducing oxygen loss. NNMO-Li0.09Sn0.01 delivers a specific capacity of 90.3 mAh g−1 with 62.9% capacity retention after 50 cycles at 0.1 C (1 C = 200 mA g−1), and 90.3% voltage retention. This closed-shell substitution strategy offers a viable approach for enhancing structural stability of wide-voltage layered oxide cathodes.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3838-5
Air-permeable and ultrathin conductive electrodes are essential for next-generation soft electronics, including breathable wearables, on-skin devices, and bio-integrated electronics. However, conventional metallization strategies, such as sputtering and ink-printing, often suffer from severe vertical charge leakage due to the porous and ultrathin characteristics of nanofibrous networks, leading to device short-circuiting, operational failure, and limited vertical integration. Here, we present a solvent-selective dissolution-assisted transfer printing strategy to achieve surface-confined metallization of ultrathin, lightweight, and gas-permeable nanofibrous networks, enabling lateral conductivity while maintaining vertical insulation. This transfer printing process facilitates not only the rapid formation of conductive patterns on the surface of nanofibrous networks but also mechanical reinforcement through solvent evaporation-induced interlocked fiber-fiber welding. Meanwhile, the strategy preserves the high permeability of the nanofibrous networks and imparts a unique combination of surface conductivity (2 Ω cm) and vertical insulativity (10^11 Ω cm). The resulting anisotropic conductive networks enable low-voltage wearable heaters, high-sensitive pressure sensors, and ultralight temperature sensors. A pressure-temperature dual-modal sensing patch is further fabricated for intelligent grasping classification. The proposed surface-confined metallization strategy enables rapid fabrication of an anisotropic conductive network as a building block to construct air-permeable, ultrathin, and lightweight wearable electronics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3581-2
Radiotherapy (RT) is a standard cancer treatment that directly kills tumor cells and promotes systemic immune responses. However, RT can exacerbate tumor hypoxia, which suppresses dendritic cell (DC) antigen presentation and weakens systemic anti-tumor immunity. Here, we report oxygen-loaded in situ gels carrying bacterial outer membrane (MOGel) that slowly degrade to release oxygen and bacterial outer membrane (OM). Oxygen release alleviates tumor hypoxia, while OM continuously activates DCs, enhancing their antigen-presenting capability. In vitro, MOGel combined with RT induced the strongest tumor cell apoptosis. In an orthotopic colon cancer model, MOGel+RT achieved an 80% tumor suppression rate. Notably, MOGel+RT elicited an enhanced abscopal effect, with hypoxia relief and enhanced DC activation contributing to systemic immune responses. These findings suggest that OM-based oxygen gels offer a novel strategy to enhance systemic immune responses to RT.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3689-9
Converting body heat into electricity presents an appealing route for sustainably powering wearable electronics; however, conventional thermoelectric materials face significant drawbacks, including high ionic concentrations, toxicity, and limited thermoelectric efficiency. Here, we report an ionic thermoelectric hydrogel designed through precise supramolecular chemistry, utilizing dual molecular interactions: host-guest complexation of α-cyclodextrin (α-CD) with I3− ions and hydrogen bonding between polyvinyl alcohol (PVA) polymer chains and I3−. This molecularly tailored approach markedly amplifies thermoelectric performance, achieving a high thermopower of 2.21 mV/K and a tenfold enhancement in peak power output at an exceptionally low iodine concentration (10 mmol/L I− + 2.5 mmol/L I3−). The hydrogel maintains excellent biocompatibility and mechanical robustness, suitable for direct skin contact. Demonstrated applications include flexible thermoelectric devices generating nearly 100 mV from body heat and sensor arrays capable of motion and spatial temperature sensing. These results underscore the substantial potential of supramolecularly designed ionic thermoelectric hydrogels for wearable energy harvesting, personalized healthcare monitoring, and advanced human-computer interfaces.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202506005
The escalating generation of medical waste, driven by healthcare expansion and frequent medical activities, poses significant environmental and public health risks. Under the framework of ecological civilization, China is developing a comprehensive policy system for medical waste treatment and disposal, yet the current framework remains nascent and exhibits inconsistencies between national and local policies. This study systematically analyzes the status of national and local policies from 2003 to 2024, collecting 413 policy documents (166 from national ministries and 247 from provincial governments). The analysis examines temporal evolution, regional distribution, and policy focus, alongside the influence of medical waste output, treatment technologies, facility infrastructure, and major epidemic responses. Findings reveal distinct policy phases: initial self-disposal, exploratory management, foundational system building, and rapid development. Regional disparities are pronounced, with eastern coastal areas showing more advanced policies due to greater technical and financial resources. The surge in medical waste, particularly during the COVID-19 pandemic, underscores the need for enhanced regulatory guidance. Non-incineration technologies are gaining traction for their environmental and cost benefits, and facility coverage has improved but remains uneven. The study proposes five policy principles to foster technological innovation and industrial upgrading, ensuring safe medical waste management and environmental protection.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202506010
To facilitate accurate understanding and implementation of the provisions in the Technical Specification for Comprehensive Utilization of Titanium Gypsum (GB/T 45015-2024), and to promote technological capability in comprehensive utilization while effectively controlling environmental risks during utilization, this paper analyzes the current status and existing problems of titanium gypsum generation, management, and utilization technologies in China. The standard is systematically interpreted. It is concluded that the implementation of this standard will promote resource utilization of titanium gypsum, foster energy conservation and carbon reduction in the titanium dioxide industry, and further safeguard ecological and environmental security. China produces over 3,120×10^4 t of titanium gypsum annually (2023), yet its comprehensive utilization rate is only about 10%, far lower than that of phosphogypsum (~40%) and desulfurization gypsum (~80%). The standard, as the first national standard dedicated to titanium gypsum resource utilization, establishes technical pathways for building materials and ecological restoration, sets limits for soluble impurities, and specifies pollution control indicators throughout the utilization process. It addresses the long-standing gaps in technical standards, product quality variability, and environmental supervision, providing critical support for the green and low-carbon transformation of the sulfuric acid process titanium dioxide industry.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202507030
Arsenic is a toxic metalloid predominantly present in water as As(V) and As(III), whose speciation governs toxicity and mobility. Conventional speciation methods (HPLC-ICP-MS, IC-HG-AFS) offer ultralow detection limits but suffer from high cost, long analysis times, and non-portability, hindering on-site rapid monitoring. This study presents a sulfide-based spectrophotometric method exploiting the quantitative reaction between As(V) and S2− to form monothioarsenate (H3AsO3S) with a characteristic absorption at 233 nm. Under optimized conditions (H+ concentration 1 mol·L−1, Na2S dosage 5 mmol·L−1, reaction time 3 min, N2 purging 2 min), As(V) is directly quantified. Total arsenic is determined after complete oxidation of As(III) to As(V) using NaClO (10 mmol·L−1, pH 12, 5 min), and As(III) is obtained by difference. The method exhibits linearity over 0.5–50 mg·L−1 (A = 0.0209c + 0.0627, R² = 0.999), a detection limit of 0.17 mg·L−1, spike recoveries of 101.9%–104.1%, and relative standard deviation of 1.06%. Validation against real industrial wastewater samples showed relative deviations <10% compared with HPLC-ICP-MS and IC-HG-AFS. Total analysis time is within 15 min. The method is simple, cost-effective, and suitable for field monitoring.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.3724/2097-213X.2025.JFCT.0028
Pyrolysis is a key route for the graded conversion of low-rank coal, yet the volatiles are rich in oxygenates and heavy components, limiting direct utilization. This study proposes a tandem catalytic system combining metal oxides and ZSM-5 zeolite to efficiently convert lignite pyrolysis volatiles into light aromatics (benzene, toluene, ethylbenzene, xylene, naphthalene, methylnaphthalene). The upper-layer metal oxide pre-cracks large molecules and removes oxygenates, reducing carbon deposition on the zeolite and extending catalyst life. Among metal oxides tested, strongly basic MgO exhibited superior cracking and deoxygenation performance. Compared to ZSM-5 alone, the MgO/ZSM-5 tandem system increased total light aromatics yield by approximately 20% to 21.5 mg/g, while maintaining liquid product proportion at 21.4%. The incorporation of MgO also significantly reduced coke deposition on ZSM-5, preserving its catalytic activity and potentially prolonging its operational lifespan. These findings provide a theoretical basis for upgrading low-rank coal pyrolysis volatiles to valuable light aromatics.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2024112104
Carboxyl-modified polystyrene microplastics (PS-COOH) are negatively charged particles formed by surface oxidation and functional group modification of polystyrene microplastics (PS), widely used in biomedical and analytical chemistry. However, studies on their neurotoxic effects on aquatic organisms are scarce. This study employed zebrafish (Danio rerio) as a model organism, exposing embryos to environmentally relevant concentrations (0.1, 1, 10, 100 μg·L−1) of PS and PS-COOH. Neurotoxic effects were assessed by measuring tail coiling frequency at 24 hpf and swimming velocity under alternating light/dark cycles at 120 hpf. Results demonstrated that both PS and PS-COOH induced neurotoxicity, with PS-COOH significantly reducing tail coiling frequency and average swimming speed compared to PS (P<0.05). Exposure to 10 μg·L−1 PS-COOH disrupted neurotransmitter homeostasis, altering levels of acetylcholine (ACh), serotonin (5-HT), and γ-aminobutyric acid (GABA). Transgenic zebrafish Tg(huc:EGFP) fluorescence assays revealed that PS-COOH (0.1–100 μg·L−1) caused damage to central neurons. These findings indicate that PS-COOH exposure impairs cholinergic, serotonergic, and GABAergic neurotransmission, induces neuronal damage, and exerts neurotoxic effects on zebrafish larvae. This study provides a theoretical basis for assessing the ecological and health risks of modified microplastics.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025101101
Acetamiprid, a representative neonicotinoid insecticide, persists in soil and water, posing ecological risks. This study evaluated its transgenerational toxicity in Caenorhabditis elegans exposed to 1, 10, and 100 μg·L−1. Direct exposure (F0) caused neurobehavioral abnormalities, with head swing frequency significantly increased by 23.86% even at 1.0 μg·L−1, correlating with disrupted acetylcholinesterase and γ-aminobutyric acid. Reproduction, development, metabolism, and intestinal barrier were impaired, with reactive oxygen species elevated by 30.42%–48.28%, indicating oxidative stress as a mechanism. Effects transmitted to unexposed T1–T3 generations: at 1.0 μg·L−1, body width inhibition persisted to T2; fat accumulation and intestinal permeability effects intensified with concentration. Among oxidative stress biomarkers, superoxide dismutase showed highest sensitivity and transgenerational persistence. This study reveals multidimensional transgenerational toxicity, informing soil ecological risk assessment of neonicotinoids.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2024112101
The biological reduction of Cr(VI) to less hazardous Cr(III) is a promising strategy for remediating Cr(VI)-contaminated sites. Both biochar and riboflavin can act as electron shuttles to accelerate this bioreduction process, yet their combined effects remain poorly understood. Using Shewanella oneidensis MR-1 as a model reducing bacterium, we investigated the joint influence of biochar (average particle size 28.85 μm) and riboflavin at high (1 mmol·L−1) and low concentrations on Cr(VI) bioreduction. Individually, biochar and high-concentration riboflavin enhanced indirect electron transfer, accelerating Cr(VI) removal. However, when combined, the fast-phase reaction rate (rf0) did not significantly improve compared to single amendments. The combined action factor revealed an antagonistic inhibition between biochar and riboflavin. Mechanistically, high-concentration riboflavin saturated biochar's adsorption sites (equilibrium concentration 0.96±0.04 mmol·L−1), hindering biochar's role as an electron conduit. With a bacterial density of 3.4×10^7 cells·mL−1, the inter-bacterial distance (30.87 μm) exceeded biochar's particle size, and the per-cell riboflavin concentration (2.9×10−2 pmol·cell−1) was sufficient for riboflavin to dominate as the primary electron shuttle, while biochar's surface became coated, reducing its efficacy. These findings reveal the complex interplay between biochar and soluble organic matter in Cr(VI) bioreduction, underscoring the need to consider such antagonistic effects when designing bioremediation strategies for multi-component contaminated environments.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2024112102
Based on the 2022 activity data of non-road mobile sources in Hebei Province, this study employed the emission factor method recommended by the Guidelines to estimate emissions of CO, HC, NOx, PM2.5, PM10, and SO2. A comprehensive emission inventory was established, followed by spatial and uncertainty analyses. Scenario analysis, aligned with the 14th Five-Year Plan policies, was used to project emissions for 2030. The results indicate that non-road mobile sources in Hebei emitted 76.1×10^3 t of CO, 20.6×10^3 t of HC, 164.0×10^3 t of NOx, 8.5×10^3 t of PM2.5, 9.0×10^3 t of PM10, and 2.4×10^3 t of SO2. Agricultural machinery was the dominant contributor to CO, HC, PM2.5, and PM10, accounting for over 60.0% of CO emissions. Railway locomotives were the primary source of NOx, contributing 50.9%. For SO2, agricultural machinery and railway locomotives contributed 39.0% and 44.4%, respectively. The highest emitting cities were Tangshan (21.3%), Shijiazhuang (15.7%), Cangzhou (11.6%), and Handan (11.6%). Ship emissions were concentrated in Tangshan Port; civil aviation emissions were mainly in Shijiazhuang, Tangshan, Qinhuangdao, and Handan; railway emissions were distributed in Shijiazhuang, Baoding, and Handan. Under the updated emission standard scenario, NOx and PM10 emissions in 2030 could be reduced by approximately 35.0%. The phase-out of old machinery yielded the largest reduction in CO (36.0%), while both electrification and phase-out scenarios significantly impacted HC emissions.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2024102403
The rapid combustion of soot at low temperatures is critical for diesel engine cold-start emission control. This study investigates the effects of water vapor (H2O) and nitrogen oxides (NOx) on electricity-pulse-sparked catalysis (EPSC) for soot combustion over a ceramic filter paper-based potassium-supported antimony-doped tin oxide (K/ATO/CP) monolithic catalyst. Under EPSC with 2000 J pulses, the presence of H2O and NOx adversely affected soot combustion performance, yet average reaction rates remained high at 12.0 μmol·gcat−1·s−1 and 9.53 μmol·gcat−1·s−1, respectively, exceeding conventional thermal catalysis (<8 μmol·gcat−1·s−1). In situ Raman and concentration profiles revealed that electricity pulses promote rapid H2O desorption, effectively alleviating H2O poisoning and restoring catalyst activity. In contrast, NOx adsorption forms stable nitrates (e.g., KNO3) that desorb slower than the soot combustion process, leading to incomplete recovery of activity. These findings highlight the importance of adsorbate desorption kinetics in EPSC and suggest that using weakly basic alkaline-earth metals (e.g., Mg, Ca, Sr) with lower nitrate decomposition temperatures could mitigate NOx poisoning. The results provide guidance for advancing EPSC technology in hybrid vehicle exhaust aftertreatment systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4002-8
Neuromorphic electronic systems, inspired by the brain's parallel and distributed information processing, have emerged as a promising alternative to von Neumann architectures, which suffer from the memory wall and limited energy efficiency. However, seamless integration with biological tissue, particularly human skin, necessitates mechanical flexibility and conformability. Flexible neuromorphic electronics, combining neuromorphic computing with flexible substrates, enable brain-inspired processing with high efficiency and ultralow power consumption, targeting smart wearables, digital health, and brain-computer interfaces. Despite rapid advances in flexible synaptic devices, a cross-disciplinary synthesis connecting materials, device physics, circuit integration, and applications is lacking. This review systematically follows a device-to-system framework, first summarizing recent progress in flexible artificial synapses that emulate neural functions, then discussing neuromorphic circuits and systems, focusing on collaborative sensing-computing and heterogeneous integration strategies toward integrated sensing-memory-computing systems. Emerging applications in next-generation bio-intelligent systems, including wearables, health monitoring, and human-machine interaction, are highlighted. Key challenges and future directions are summarized to guide development of efficient, intelligent, and biocompatible bionic hardware. The review underscores the need for standardized metrics and scalable manufacturing to translate laboratory prototypes into practical flexible neuromorphic systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3485-0
Aqueous Zn-ion batteries (AZIBs) are promising for next-generation energy storage due to high safety and low cost, but their practical use is limited by Zn dendrite growth and side reactions. An ideal anode/electrolyte interphase should block water contact while enabling fast Zn2+ transport, yet conventional thick interphases increase ionic resistance and polarization. Here, we report a hydrophobic yet ultrathin (~5 nm) polydimethylsiloxane (PDMS) artificial interphase fabricated via conformal coating. The oxygen-rich PDMS layer selectively coordinates Zn2+ while its superhydrophobicity excludes water, and the ultrathin nature enables rapid Zn2+ conduction, enhancing the Zn2+ transference number by 2.28-fold. This synergistic design suppresses dendrites and mitigates hydrogen evolution. The PDMS-modified anode achieves 99.9% Coulombic efficiency over 3500 cycles, 880-hour symmetrical cell operation at 60% depth of discharge, and 2500-cycle full-cell endurance under lean Zn conditions (N/P ratio 5.7). Proof-of-concept pouch cells sustain 1400 cycles with a 0.01% decay rate. This molecular-scale interphase strategy provides a feasible pathway toward practical AZIB implementation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3778-8
The global surge in polyvinyl chloride (PVC) waste demands urgent technological solutions that address both environmental persistence and resource recovery. Here, we present a triple-functionalization strategy that converts chlorinated plastic waste into high-performance sodium-ion battery anodes through molecular-level control of carbon architectures. Sequential dichlorination, sulfonation, and N-doping collaboratively reconfigure precursor reactivity, steering pyrolysis toward hierarchically porous hard carbon with tailored defect chemistry. Sulfonic groups stabilize 3D carbon skeletons during carbonization, enabling closed-pore formation with an average diameter of ~2.55 nm while N-doping expands interlayer spacing (0.382 nm) and creates adsorption-active pyrrolic-N sites. This defect-engineered synergy delivers unprecedented sodium storage metrics: 355 mAh g−1 reversible capacity at 0.1 A g−1 (95.4% of graphite’s Li-ion capacity), a capacity retention of 216 mAh g−1 after 1000 cycles at 1.0 A g−1 (70.1% capacity retention), and 188 mAh g−1 even at a high current density of 5.0 A g−1. Operando analyses reveal a potential-dependent storage hierarchy: surface-dominated adsorption transitions to intercalation/filling-dominated behavior with defect-buffered structural integrity. The process simultaneously achieves 25% carbon yield from PVC and avoids toxic dioxin emissions, establishing a scalable prototype for sustainable energy storage systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4028-5
The escalating thermal management demands of modern electronics necessitate materials with superior thermal conductivity and matched thermal expansion. Cu/Diamond composites are promising, yet their fabrication typically requires extreme conditions (high temperature/pressure) or complex coating processes. This work introduces a one-step, heat-source-free cold manufacturing method using ultrasonic vibration to consolidate Cu/Diamond composites at room temperature and a low pressure of ~16 MPa within seconds. The applied pressure is reduced by 200–500 times, and the required temperature is only 20% of that used in conventional high-temperature high-pressure sintering. Direct metallurgical bonding at Cu-Cu interfaces and solid embedding of diamond particles in the Cu matrix are achieved, yielding a composite with a high yield strength of 150 MPa. The method enables a maximum diamond proportion of ~60%, resulting in a thermal conductivity exceeding 1043 W/(m·K) and a coefficient of thermal expansion below 10×10⁻⁶ K⁻¹. Complex shapes are readily fabricated, and heat dissipation tests demonstrate superior performance compared to commercial Al₂O₃ and AlN substrates. The loose preparation conditions and rapid processing confer significant industrial production potential.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4043-3
In-plane InAs nanowires and nanowire networks are promising platforms for electronics, optoelectronics, and topological quantum computing due to their small electron effective mass, narrow bandgap, high electron mobility, strong spin-orbit coupling, and large Landé g factor. However, their selective area growth on CMOS-compatible group-IV substrates remains challenging. Here, we report the selective area growth of high-quality in-plane InAs nanowires and nanowire networks on Ge(111) substrates by molecular-beam epitaxy. Conventional selective-area epitaxy fails to simultaneously achieve good selectivity and continuity. To overcome this, we developed a metal-sown, single-indium-source two-step growth method, which attains both selectivity and continuity but yields nanowires with rough surfaces and lengths below 10 μm. We then introduced an upgraded metal-sown, dual-indium-source two-step growth method, successfully fabricating in-plane InAs nanowires and nanowire networks with smooth surface morphology and lengths exceeding 60 μm. By optimizing the As beam equivalent pressure, overgrowth at network junctions is effectively suppressed, resulting in uniform nanowire networks. High-resolution transmission electron microscopy and Raman spectroscopy confirm the high-quality single-crystalline nature and pure zinc-blende structure of the nanowires and networks. This work establishes a foundation for fabricating high-quality in-plane InAs/superconductor hybrid nanowires and nanowire networks on Ge substrates.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3407-0
Grain boundary (GB) engineering has emerged as a promising strategy to enhance the near-room-temperature performance of Mg3(Sb,Bi)2-based thermoelectric materials, yet effective control of Mg distribution at GBs remains a significant challenge. Here, we report a novel approach to achieve targeted Mg segregation at GBs through strategic Ag incorporation in Mg3.3Sb0.5Bi1.497Te0.003. Through comprehensive microstructural characterization and first-principles calculations, we demonstrate that Ag preferentially segregates at GBs, forming Mg-rich MgAg alloy phases while maintaining limited solid solubility within the matrix. This unique GB architecture simultaneously optimizes multiple thermoelectric parameters: the Mg-rich GB regions significantly provide efficient carrier transport channels and enhance carrier mobility, while the MgAg phases and lattice disorders effectively scatter phonons without disrupting electron transport. Consequently, the optimized composition (x = 0.01) exhibits a remarkable enhancement in power factor at 300 K and maintains an average ZT of ~1.0 across 300–400 K. The material also demonstrates excellent mechanical properties and thermal stability, making it particularly suitable for near-room-temperature applications. Our findings not only establish an effective strategy for GB engineering in Mg3(Sb,Bi)2 systems but also provide valuable insights into the rational design of high-performance thermoelectric materials through interface modification.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510089
Microplastics (MPs) are frequently detected in various water bodies, posing increasing environmental risks. This study synthesized magnetic Fe3O4@MIL-100(Fe) microspheres via an in-situ one-step hydrothermal method and investigated their adsorption removal mechanisms for polystyrene (PS) and polylactic acid (PLA) microplastics. The composite exhibited a core-shell structure with a high specific surface area of 848.6 m2·g−1. Adsorption kinetics showed that PLA followed a pseudo-second-order model, while PS fitted both pseudo-first-order and pseudo-second-order models. Equilibrium data for both MPs were well described by the Freundlich isotherm. Removal efficiencies for PLA and PS increased from 58.18% and 49.66% to 98.90% and 98.58%, respectively, as pH decreased, and from 64.24% and 21.58% to 97.05% and 94.63% with increasing ionic strength. The removal mechanism involved synergistic physical-chemical interactions: hydrogen bonding dominated for PLA, with some complexation, while π–π interactions and hydrogen bonding were primary for PS. The material demonstrated excellent reusability over multiple cycles. These findings highlight the potential of Fe3O4@MIL-100(Fe) for efficient removal of MPs from water, offering a novel approach for controlling emerging contaminants.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60625-6
The electrocatalytic reduction of nitric oxide to ammonia (NORR) is a key green energy conversion technology. Its efficiency relies on high-performance electrocatalysts to enhance both ammonia yield (YNH3) and Faradaic efficiency (FNH3). Conventional experimental screening methods are resource- and time-intensive. Here, machine learning combined with SHAP feature analysis was employed to establish a stacked ensemble model integrating multiple algorithms, enabling systematic investigation of key descriptors governing NORR performance based on an experimental dataset. Evaluation of eight model algorithms revealed that the Stacked-SVR model achieved an R² of 0.9223 and RMSE of 0.0608 for predicting YNH3 on the test set, while the Stacked-RF model achieved an R² of 0.9042 and RMSE of 0.0900 for predicting FNH3. The stacked ensemble model integrates strengths of individual algorithms, demonstrating strong prediction performance while avoiding overfitting. SHAP analysis revealed that Cu content in catalyst composition has the most significant impact on catalytic performance. Moreover, the combination of wet chemical reduction synthesis, carbon fiber (CF) conductive substrate, and HCl electrolyte is more favorable for enhancing catalytic activity. Additionally, moderately lowering working potential, controlling electrolyte volume at low-to-medium levels, reducing catalyst loading, and increasing electrolyte concentration synergistically enhance both YNH3 and FNH3.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025012401
Traditional excitation-emission matrix (EEM) fluorescence spectroscopy suffers from prolonged scanning times, data redundancy, high instrument cost, and bulkiness, hindering rapid on-site water pollution source tracing. This study proposes a novel classification method combining fixed characteristic excitation wavelength scanning with support vector machine (SVM) to enhance efficiency. A total of 180 EEM samples were collected from six pollution source categories: chemical fiber dyeing and finishing, wool textile dyeing and finishing, leather processing, metal surface processing, papermaking, and domestic sewage. Parallel factor analysis (PARAFAC) identified characteristic fluorescent components and excitation wavelengths. Correlation analysis and feature importance analysis further reduced these to seven characteristic excitation wavelengths. SVM and random forest (RF) models were constructed using both the reduced and original EEM datasets. Results demonstrated that models based on the seven characteristic excitation wavelengths maintained high recognition accuracy while significantly improving efficiency. The SVM model achieved the best performance, with runtime reduced from 243.05 s to 34.56 s (an 86% decrease) and recognition accuracy reaching 94.4%. Precision, recall, and F1-score metrics confirmed the robust performance of SVM with characteristic wavelengths, particularly for metal surface processing wastewater. This study provides an efficient and reliable method for rapid water pollution tracing by simplifying EEM scanning and integrating SVM, offering high application value. Future work will optimize feature selection strategies and explore additional sample categories and model combinations to broaden applicability.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025011804
Per- and polyfluoroalkyl carboxylic acids (PFCAs) are persistent organic pollutants whose isomers exhibit distinct environmental behaviors, bioaccumulation potentials, and toxic effects due to structural variations. Accurate identification of PFCA isomers is critical for risk assessment and pollution control, yet existing detection methods predominantly rely on standard references, posing challenges for precise analysis of isomers with subtle structural differences. Single-molecule electrochemical sensing via nanopores offers a standard-free approach by correlating molecular volume with current blockade, but its capability to distinguish PFCA isomers remained unverified. This study targeted three sets of PFCA isomers: 4,5,5-trifluoropent-4-enoic acid vs. 4,4,4-trifluoro-3-methylbut-2-enoic acid; 3,3,3-trifluoro-2-methylpropanoic acid vs. 4,4,4-trifluorobutanoic acid; and 2-(trifluoromethoxy)acetic acid, 3,3,3-trifluorolactic acid, and (2R)-3,3,3-trifluoro-2-hydroxypropanoic acid. By engineering nanopore interfaces (WT, R220N, R220Q Aerolysin) and extracting multi-dimensional characteristic parameters, the method achieved near 100% accuracy in identifying all seven isomers. Feature selection further enabled high classification accuracy with low data volumes, laying the foundation for rapid single-molecule detection of PFAS and other emerging contaminants.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202605002
The single-phase partial nitrification and anammox (SPN/A) process has seen limited widespread application due to its slow startup and difficulties in enriching anaerobic ammonium-oxidizing bacteria (AnAOB). This study utilized high-ammonia nitrogen wastewater to initiate and enhance the SPN/A process in a pilot-scale integrated fixed-film activated sludge (IFAS) reactor. By establishing an IFAS-SPN/A coupled system based on the symbiotic relationship between biofilm and sludge, rapid startup and efficient AnAOB enrichment were achieved. An innovative sludge inoculation strategy was employed: first, conventional nitrifying sludge was inoculated to initiate shortcut nitrification and allow ammonia-oxidizing bacteria (AOB) to colonize blank carriers; subsequently, anammox sludge was inoculated to promote efficient AnAOB enrichment on the AOB biofilm. The influent was low-temperature shift condensation water from a synthetic ammonia workshop, with an average ammonium nitrogen concentration of 2300 mg/L and COD ranging from 50 to 200 mg/L. The 180-day experiment comprised three stages: shortcut nitrification startup, SPN/A startup, and load intensification. The system successfully started up SPN/A within 120 days, achieving total nitrogen removal efficiency and removal load of (90.21±2.18)% and (0.31±0.07) kg/(m³·d), respectively, through synergistic biofilm and suspended microorganisms. During load intensification, AnAOB relative abundances in biofilm and flocs reached 18.8% and 35.3%, respectively, and removal load increased to (0.64±0.11) kg/(m³·d). Stable influent quality is a prerequisite for efficient and stable nitrogen removal; a surge in influent ammonium concentration caused nitrite accumulation imbalance and deteriorated performance. Adding an equalization tank before the aeration tank mitigates water quality fluctuations, and a 'dilution-reconstruction' strategy for low-ammonia wastewater facilitates rapid recovery after performance deterioration.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202605013
The escalating eutrophication of aquatic systems has intensified algal blooms, leading to substantial release and accumulation of algal-derived dissolved organic matter (ADOM), which profoundly influences carbon cycling and pollutant transport. Iron minerals, particularly ferrihydrite, are recognized as critical mediators of DOM sequestration, yet the adsorption fractionation of ADOM under varying environmental conditions remains poorly understood. This study systematically investigated the effects of pH (2.0–10.0) and initial dissolved organic carbon (DOC) concentration (2–100 mg C/L) on the adsorption capacity and selectivity of ADOM onto ferrihydrite, employing UV-Vis spectroscopy and excitation-emission matrix fluorescence with parallel factor analysis (EEM-PARAFAC). Results demonstrated that adsorption capacity increased with pH from 2.0 to 7.0, reaching a maximum of 21.59 mg C/g at pH 7.0, followed by a decline at pH > 7.0 due to enhanced electrostatic repulsion. Within the environmentally relevant pH range of 3.0–9.0, selective fractionation intensified with increasing pH, favoring highly aromatic, high-molecular-weight chromophoric DOM (CDOM) and protein-like/aromatic amino acid fluorescent DOM (FDOM) with high humification and autochthonous characteristics. With increasing initial DOC concentration, adsorption exhibited non-linear growth, with preferential uptake of low-aromaticity, high-molecular-weight CDOM and protein-like FDOM of lower humification and stronger autochthonous features. These findings elucidate that ferrihydrite can effectively sequester reactive ADOM components via pH- and concentration-dependent selective adsorption, potentially altering DOM composition and reactivity in eutrophic waters, thereby providing fundamental data for understanding iron mineral-mediated internal carbon sequestration.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3829-7
Circularly polarized luminescence (CPL) is pivotal for advanced photonic applications, yet achieving concurrent high emission efficiency and large dissymmetry factors remains challenging. Here, we report a chiral reticular chemistry strategy to construct homochiral porous metal-organic frameworks (MOFs) as efficient CPL-active materials. By co-assembling enantiopure R/S-binol with achiral luminescent ligands, three pairs of enantiomeric pillar-layered MOFs were synthesized. These frameworks exhibit significantly amplified CPL responses, with |g_lum| values enhanced by up to two orders of magnitude compared to free ligands, reaching levels comparable to state-of-the-art chiral assemblies, while maintaining high photoluminescence efficiencies (Φ_PL up to 67%). Mechanistic investigations reveal that CPL originates primarily from the global chirality of the hierarchical frameworks rather than the intrinsic chirality of the precursors. This work establishes a robust design principle for porous CPL-active materials, offering new insights into chirality transfer and opening avenues to integrate strong luminescence with stable chirality in extended frameworks.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4046-6
The deliberate control of framework dimensionality represents a powerful yet underexplored strategy for tailoring the functionality of homochiral metal-organic frameworks (HMOFs). Herein, we report a logical dimensional evolution from 1D and 2D to 3D HMOFs, achieved by tuning the connectivity of the auxiliary ligand. Employing a planar, three-connected ligand, 2,4,6-tri(pyridin-4-yl)-1,3,5-triazine (Tpt), together with enantiopure tetracarboxylate of cyclohexane diamide linkers ((1R,2R/1S,2S)-cyclohexane-1,2-dicarbonyl bis(azanediyl)diisophthalate) (R,R/S,S-CHCAIP) and Zn2+ salts, a pair of 3D porous HMOFs (P/M-HMOF-5) was successfully constructed. The 3D framework features unique heart-shaped channels and a novel 4-(3,3,3,6)-connected topology. Structural analyses reveal trinuclear Zn3(μ3-O) clusters that, upon activation, generate open metal sites. These Lewis acid sites, synergizing with Lewis basic sites from the framework, confer efficient acid-base bifunctional heterogeneous catalysis for the synthesis of 2,3-dihydroquinazolinones in excellent yields (90%–98%). Furthermore, P/M-HMOF-5 serve as highly sensitive and enantioselective fluorescent sensors for amino acids and α-hydroxy carboxylic acids, with the highest discrimination observed for phenylalanine (KBH(D-Phe)/KBH(L-Phe) = 5.85 for M-HMOF-5). This work demonstrates how rational ligand connectivity steers dimensional evolution, enabling the integration of distinct catalytic and sensing functions within a single chiral platform, thereby providing a blueprint for the design of advanced multifunctional materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3928-4
Circularly polarized afterglow (CPA) materials provide an advanced optical signature to light emission, offering great potential for advanced photonic technologies. However, practical implementation remains challenging due to the lack of satisfactory performance, that is, high luminescence dissymmetry factor (g_CPA), long visualization time, and good processability. Here, we develop processable, full-color CPA materials composed of cholesteric liquid crystal polymers (CLCPs) and inorganic phosphors embedded in polymers, achieving a high g_CPA value of up to 0.74 and a long visualization time of 7 min. The materials are constructed with a bilayer structure comprising CLCPs and inorganic luminophors such as Y2O2S:Eu,Mg,Ti, SrAl2O4:Eu,Dy, and Sr2MgSi2O7:Eu. The CLCPs are synthesized from polymerizable liquid crystal monomer RM257, chiral dopants R/S5011, dipropylamine, photoinitiator Irgacure 651, cross-linker PETMP, and chain extender. The resulting materials exhibit excellent circularly polarized optics, enabling the implementation of circular polarization differential imaging (CPDI), where images are generated by subtracting two images captured through left- and right-handed circularly polarized filters. This work demonstrates the unique application of CPA in imaging, opening a new pathway for the use of purely inorganic solid-state luminophors in chiral functional materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3768-8
Damping materials are critical for mitigating vibrations and noise across various frequencies by converting mechanical energy into thermal energy. However, achieving a simultaneous high damping capacity and high toughness remains a formidable challenge. Here, we report a supramolecular polymer (SMP) that integrates high damping and toughness through the synergistic action of dynamic hydrogen bonds and side-chain relaxation. The polymer exhibits exceptional mechanical properties: a Young's modulus of 47.08 MPa, elongation at break of 605%, and toughness of 15.24 MJ m−3. The dynamic hydrogen bonds confer dual responsiveness to strain rate and temperature, with a 6.7-fold variation in Young's modulus under different stretching rates and a five-order-of-magnitude change in storage modulus across a temperature range. Under mechanical force, the interpenetrating side chains undergo mutual friction, enabling repetitive energy dissipation. This mechanism yields superior damping ability with a loss factor (tanδ) of 1.6 at 1 Hz, demonstrating outstanding performance in vibration absorption and noise reduction. The material's design offers a promising strategy for developing high-performance damping materials that balance energy dissipation and mechanical robustness, suitable for applications in wearable electronics, protective equipment, and structural vibration control.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202509078
The rapid expansion of photovoltaic (PV) installations and the impending retirement of early-stage modules have made the recycling of end-of-life PV modules an urgent issue. This review systematically examines the types and structures of retired PV modules, with a focus on crystalline silicon (c-Si) and thin-film technologies. It critically evaluates the principles, processes, and pros and cons of physical, chemical, pyrolysis, biological, combined, and emerging methods for recovering c-Si modules. The current status of silicon, metal, and valuable component recovery processes is summarized. For thin-film modules, the core technologies for recovering valuable components via pyrometallurgical, hydrometallurgical, biological, and novel approaches are analyzed in depth. Results indicate that conventional methods (physical, chemical, pyrolysis) remain dominant but suffer from high energy consumption, pollution, and chemical usage. Emerging technologies such as biological and green leaching are identified as key research directions, though they face challenges of low technical maturity and high costs. Finally, policy orientations and existing challenges are discussed, and future development directions are proposed, providing significant guidance for the sustainable and large-scale green development of the PV industry.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3868-y
Selective ion transport in spatial confinement is central to environmental and energy sustainability, including desalination, energy conversion, and resource recovery. While biomimetic nanochannel membranes often rely on size exclusion or fixed ion-channel interactions, real-world separation systems involve multicomponent ionic mixtures where ion-ion interactions, such as dynamic pairing and competition, play a decisive yet underexplored role. Pan and coworkers address this gap by developing a functionalized membrane enabling dynamic manipulation of ion-ion interactions triggered by external ionic stimuli, achieving precise and reversible control over target ion transport. The membrane is constructed from aligned MXene nanosheets functionalized with γ-PGA through covalent and hydrogen bonding, establishing well-defined spatial confinements and adjacent amino and carboxyl groups that serve as anion-cation binding sites. This design enhances ion-pair formation, yielding ion selectivity and stimulus-responsive performance rivalling biological channels. Notably, when K+ and Mg2+ co-permeate, anions preferentially associate with K+ within the nanochannel, disrupting Mg2+ transport despite Mg2+'s higher affinity for channel walls. The MLM–γ-PGA membrane exhibits uniform channel architecture and remarkable aqueous stability. Ion transport characterization using a U-shaped diffusion cell with chloride salt solutions shows that with 0.2 M MgCl2 feed, Mg2+ permeation rate is 3.16 × 10−3 mol m−2 h−1. Introducing 0.2 M KCl suppresses Mg2+ permeation by two orders of magnitude to 3.2 × 10−5 mol m−2 h−1, with full reversibility over multiple cycles. This work highlights the potential of exploiting ion-ion interactions in nanoconfinement for precision separation.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510084
The rapid expansion of lithium battery industries has elevated lithium resources to strategic importance, yet lithium extraction generates 8–10 tons of slag per ton of lithium salt, with complex heavy metal content and high leaching risks. This study improves conventional alkali activation by employing a composite activator and multi-stage thermal assistance to achieve self-solidification of lithium slag, simultaneously immobilizing multiple heavy metals while producing high-strength materials. Under full slag conditions, the mechanical strength of solidified materials ranged from 3.48 to 8.25 MPa; after optimization, strength increased by 137.07%. Average immobilization rates for various heavy metals rose from 97.26% to 99.77%. In simulated acidic, alkaline, neutral, high-salt, acid rain, and leachate environments, efficient immobilization was maintained, with leachate concentrations below regulatory limits. The improved activator and thermal process reduced structural defects, promoted formation of the key Si-O-Al framework, and ensured structural integrity, enhancing both mechanical strength and heavy metal immobilization. The cost of slag solidification was approximately 185–200 CNY per ton, significantly lower than conventional methods, with low energy consumption, no high-temperature calcination, and reduced equipment and reagent requirements, supporting scalability.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510004
Ammonium salt crystallization-induced blockage of the regenerative heat exchanger in regenerative thermal oxidizers (RTOs) remains a critical operational challenge, particularly in pharmaceutical applications where NH4Cl constitutes up to 70% of the fouling deposits. This study employs computational fluid dynamics (CFD) to systematically simulate six purging configurations, varying injection angle and pipe arrangement, and quantifies purging effectiveness via a novel evaluation method based on characteristic observation planes. Using the Realizable k-ε turbulence model coupled with a porous media model, we analyze the velocity distribution and low-velocity failure zones at the gas chamber–regenerator interface. Results demonstrate that a single-pipe 45° oblique injection achieves the highest effective purging area of 57.6%, a 35.7% improvement over conventional horizontal purging. Increasing pipe diameter significantly enhances flow uniformity, yielding an efficiency gain of approximately 40%, outperforming mere increases in gas velocity. A synergistic optimization strategy is proposed, prioritizing high-performance purging structures with coordinated parameter tuning. The recommended configuration—single-pipe 45° injection, 280 mm pipe diameter, and 14 m·s−1 gas velocity—achieves 88.2% purging efficiency without additional fan power, representing a 45.6% improvement over conventional modes. These findings provide a theoretical basis and engineering solution for RTO purging system design and operational optimization.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025022801
Paddy soils are a major source of agricultural methane (CH4) emissions. Biochar is widely applied to paddy soils, while dissolved organic matter (DOM) is ubiquitous; both can regulate CH4 emissions by mediating electron transfer processes, yet their synergistic mechanisms remain unclear. This study investigated the individual and combined effects of biochar and the DOM model compound anthraquinone-2,6-disulfonic acid (AQDS) on CH4 emissions from paddy soil during incubation. Biochar amendment increased DOM concentration and accelerated extracellular electron transfer, resulting in a maximum cumulative CH4 emission of (66.23±16.20) μmol, four-fold higher than the control (15.14±0.18) μmol. In contrast, AQDS addition markedly suppressed CH4 accumulation to (1.04±0.09) μmol, attributed to sulfate introduction as a competitive electron acceptor, despite enhanced electron exchange. The combined biochar-AQDS treatment yielded intermediate CH4 accumulation of (12.71±0.32) μmol. Although DOM availability increased, sulfate-driven electron competition inhibited methanogens, and the combined treatment favored the acetoclastic methanogenesis pathway, which produces less CH4 per unit acetate, resulting in lower emissions than biochar alone but higher than AQDS alone, indicating an additive effect. These findings elucidate the mechanisms by which biochar and DOM jointly regulate CH4 emissions from paddy soils, providing a theoretical basis for agricultural management.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025100102
Per- and polyfluoroalkyl substances (PFAS) are emerging contaminants of concern in China, and drinking water is a major exposure pathway. This study investigated 17 PFAS in surface water from 12 drinking water sources along the Hubei section of the Yangtze River mainstream during dry, normal, and wet seasons. Total PFAS concentrations ranged from 10.84 to 41.05 ng/L (dry), nd to 62.60 ng/L (normal), and 6.77 to 29.00 ng/L (wet). Predominant compounds were PFBS, PFOA, PFHxA, PFBA, and PFOS. Lake-type sources exhibited significantly higher concentrations than river-type sources, and dry and normal seasons showed higher levels than wet season. Compared to other Chinese sources, PFAS levels in Hubei were moderate, with fluorochemical plant inputs and population density as likely influencing factors. Ecological and health risk assessments indicated acceptable risks. In four selected water supply systems, PFAS distribution from source to tap was examined; PFOA, PFBA, PFHxA, and PFBS were dominant, and secondary water supply did not significantly introduce or remove PFAS. Health risks from tap water were within acceptable limits.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202606002
Industrial volatile organic compounds (VOCs) emissions are a major contributor to regional air pollution, and the rubber paste preparation process is a significant source. This study developed an intelligent monitoring system for whole-process VOCs management in a rubber paste preparation workshop, integrating software engineering and Internet of Things (IoT) technologies. The system architecture combines a hybrid database (MySQL relational and InfluxDB time-series), MQTT-based low-power wide-area communication, role-based access control, and containerized microservices. Field deployment at a large rubber enterprise enabled real-time monitoring of adsorption/desorption centrifugal fans and data fusion analysis. Under typical operating conditions, the extraction and ventilation systems achieved volume flow rates of 40,000 m³/h and 30,000 m³/h, respectively, maintaining a continuous micro-negative pressure environment that effectively suppressed fugitive emissions. The purification process, comprising zeolite rotor adsorption and regenerative thermal catalytic oxidation, reduced non-methane hydrocarbon (NMHC) concentrations to below 10 mg/m³, meeting the GB 27632—2011 emission standard. The system's multi-level permission management module precisely allocated operational responsibilities across production, environmental, and management roles, reducing response time to abnormal conditions. An online evaluation model for purification efficiency was constructed based on the actual process. The system demonstrates potential for extension to other high-VOCs industries such as coatings and printing. This research provides theoretical and practical references for applying computer technology to VOCs reduction and whole-process management in typical industries.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202606021
To provide a theoretical basis for energy-saving combustion of regenerative thermal oxidizers (RTOs), this study analyzes energy nodes during RTO operation, refines heat balance accounting, and establishes an overall energy system. Taking a three-chamber RTO as the research object, the enthalpy of exhaust gas at different stages is calculated, and a whole-process heat balance model is developed to systematically analyze exhaust gas preheating, combustion, heat recovery, and heat loss transfer. An improved energy accounting method is proposed to address dynamic heat exchange inside heat accumulators, coupling of multiple gas streams, and boundary heat loss under complex conditions. The longitudinal temperature distribution function of heat accumulators is introduced to overcome difficulties in heat accounting within the accumulator chamber. A thermodynamic system covering 11 key internal energy nodes is constructed. Combined with design characteristics of RTO operation across industries, the application scope of the overall energy system is analyzed; equilibrium terms can be adjusted according to actual conditions, ensuring wide applicability. Validation via an RTO energy system for a glove manufacturing plant demonstrates that outlet temperature prediction accuracy improves from 14.3% to 2.8%, providing a theoretical foundation for future intelligent energy-saving combustion research.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3783-x
The synergistic strategy combining chemotherapy and immunotherapy has recently demonstrated significant promise in cancer treatment. However, the substantial physicochemical disparities between chemotherapeutic agents and small-molecule immune adjuvants pose considerable challenges for co-delivery strategies. In this study, we designed a reactive oxygen species-responsive paclitaxel prodrug, PTX-PBA, which markedly enhanced drug encapsulation stability and dual-drug loading efficiency by various polymeric delivery systems. The resultant nanosystem (NanoPR) exhibited excellent physicochemical properties and ROS-triggered release profiles, effectively inducing immunogenic cell death in tumor cells while promoting dendritic cell maturation and CD8+ T cells activation. In murine models of 4T1 breast cancer and CT26 colon carcinoma, NanoPR achieved significant tumor growth inhibition and elicited durable immune memory responses. Collectively, this work provides an innovative molecular design strategy for the co-delivery of chemotherapeutics and immunomodulators, offering a robust foundation for the clinical translation of chemo-immunotherapy.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4148-3
Biological ion channels exhibit multistate transport behavior beyond simple binary open-closed conformations, enabling dynamic control of neural signaling and transmembrane substance transport. Inspired by this, we synthesized a triphenylamine-ketone donor-acceptor (D-A) type poly(aryl amine-ketone) with multiple redox sites, allowing continuously tunable electrochemical states via hierarchical electron transfer. Combining this polymer with two-dimensional conductive MXene, we constructed a biomimetic nanofluidic transistor. Through side-group tuning to optimize redox matching, the polymer undergoes reversible conformation switching via intramolecular charge transfer at voltages below 1 V. The field-driven conformational changes induce electrostatic attraction, promoting reversible contraction of MXene interlayers. Synergistic coupling of interlayer spacing variation and dynamic interfacial charge rearrangement enables precise hierarchical control of ion flux. The device achieves three switchable ion transport states—closed, partially open, and fully open—with an ion switching ratio of 10 and outstanding cycling stability. Furthermore, synaptic plasticity features emulate fundamental attributes of biological signaling, providing a foundation for bioinspired neuromorphic devices.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510060
Wastewater treatment plant (WWTP) effluent is a significant pathway for emerging contaminants (ECs) to enter natural water bodies. This study investigated the removal of ECs by two field-scale gravel-based constructed wetlands: a horizontal subsurface flow constructed wetland (QL-CW) and a surface flow constructed wetland (BL-CW), both treating actual WWTP effluent. The influence of operation mode and wetland plant type on EC removal was examined. Using liquid chromatography-mass spectrometry, principal component analysis, and ecological risk assessment, the removal efficiencies and mechanisms for various ECs were explored. In QL-CW, biodegradation was more pronounced, particularly via ammonia-oxidizing bacteria co-metabolism, favoring ECs with benzyl, secondary amine, secondary amide, tertiary amide, halogenated, and carboxyl functional groups. In BL-CW, electrostatic attraction and hydrophobic interactions were more significant, with plant and root-microorganism uptake and adsorption playing key roles. Surface flow mode achieved significantly higher removal of antibiotics (45.3% vs. 34.1%) compared to horizontal subsurface flow, while no significant differences were observed for non-antibiotic pharmaceuticals (66.6% vs. 64.4%) and pesticides (49.8% vs. 34.2%). Planting Cyperus alternifolius (windmill grass) was more beneficial for antibiotic removal (43.6% vs. 30.1%) than planting Ipomoea aquatica (water spinach). The wetlands effectively reduced the ecological risks of most ECs to marginal levels. This study provides insights into the deep treatment of ECs in WWTP effluent by constructed wetlands.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511098
A highly sensitive analytical method for the determination of 2-bromostyrene in tap water and surface water was developed and optimized using headspace solid-phase microextraction (HS-SPME) coupled with gas chromatography-mass spectrometry (GC-MS). The extraction conditions were systematically optimized via single-factor experiments and an L9(34) orthogonal array with range analysis. The optimal conditions were: sample volume 10 mL, extraction time 30 min, extraction temperature 30 °C, stirring rate 1000 r·min−1, and 2.5 g NaCl as salting-out agent. The method exhibited good linearity over the range 100–5000 ng·L−1 (R² = 0.9994), with a detection limit of 13.8 ng·L−1 and a quantification limit of 55.3 ng·L−1. Recoveries from spiked tap water and surface water samples ranged from 90.2% to 102.2%, with relative standard deviations between 5% and 11%. Statistical tests (normal distribution, F-test, t-test) all yielded P > 0.05, confirming the method's reliability. The method is simple, sensitive, and exhibits minimal matrix effects, making it suitable for routine monitoring of trace 2-bromostyrene in drinking water and surface water.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025032006
A thiol-functionalized Ti3C2Tx (SH-Ti3C2Tx) material was synthesized via chemical bonding of dithiothreitol (DTT) onto Ti3C2Tx MXene for the adsorptive removal of As(III) from water. Characterization by scanning electron microscopy (SEM) and Fourier transform infrared spectroscopy (FTIR) confirmed a typical two-dimensional layered structure with DTT covalently attached. The adsorption of As(III) on SH-Ti3C2Tx followed the Langmuir isotherm model, indicating monolayer adsorption. At pH 7, the maximum adsorption capacity reached 55.6 mg·g−1, which is 2.8 times higher than that of pristine Ti3C2Tx (20 mg·g−1). X-ray photoelectron spectroscopy (XPS) revealed that As(III) uptake primarily occurred via formation of As–S bonds. To enable continuous treatment, SH-Ti3C2Tx was loaded onto melamine sponge via electrostatic interactions to fabricate a flow-through adsorption column (SH-Ti3C2Tx@MS). This column achieved removal efficiencies of 99.5% for both high (100 mg·L−1) and low (100 μg·L−1) As(III) concentrations, reducing effluent As(III) to below the World Health Organization guideline of 10 μg·L−1. The spent column could be regenerated using 1 mol·L−1 NaOH solution, retaining over 80% of its initial removal efficiency after five consecutive adsorption–desorption cycles. The SH-Ti3C2Tx material demonstrates significant potential for efficient and reusable removal of As(III) from contaminated waters.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202607010
The impact of low concentrations of perfluorooctane sulfonate (PFOS) on anaerobic fermentation of waste activated sludge (WAS) remains poorly understood. This study applied three PFOS levels (0.5, 1.0, and 4.5 μg/g TSS) to systematically evaluate effects on organic matter solubilization and nitrogen/phosphorus transformations. Monitoring of soluble chemical oxygen demand (SCOD), soluble protein, polysaccharides, NH4+-N, PO43--P, and three-dimensional excitation-emission matrix (3D-EEM) fluorescence revealed that PFOS significantly enhanced release of SCOD, protein, and polysaccharides. At 45 °C after 14 days with 4.5 μg/g TSS, SCOD peaked approximately 28% higher than control, indicating increased biodegradable organic matter accumulation. NH4+-N concentrations rose overall with fluctuations, while PO43--P release was inhibited, suggesting interference with nutrient transformation pathways. 3D-EEM analysis showed strengthened signals of aromatic proteins and microbial by-products, confirming matrix solubilization. These findings demonstrate a dual effect of low-level PFOS: initial promotion of organic matter release followed by potential inhibition of nutrient transformation. This study provides data support for understanding PFOS environmental behavior in anaerobic digestion and informs sludge resource utilization and risk assessment of emerging contaminants.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202607014
Reducing ammonia emissions and recovering lost nitrogen are critical for enhancing nitrogen content in compost. Biological trickling filters, as end-of-pipe odor control, retain ammonia nitrogen in effluent, offering a reuse pathway. However, the impact of nitrogen-rich wastewater reuse within the optimal C/N range (20.0:1–30.0:1) remains unclear. This study composted biogas residue, sawdust, food waste, and mushroom residue, setting initial C/N as the control variable. Four groups were established: low C/N with nitrogen-rich wastewater (LRN), low C/N with deionized water (LRW), high C/N with nitrogen-rich wastewater (HRN), and high C/N with deionized water (HRW). Simulated wastewater (2000 mg/L NH4+-N and 2000 mg/L NO2−-N) was recycled. Results showed no inhibition of final maturity; pH (8.17–8.48) and seed germination index (GI) (90.85%–122.96%) met organic fertilizer standards. HRN reduced cumulative total greenhouse gases, N2O, and NH3 by 20.32%–30.35%, 0.67%–53.38%, and 52.14%–62.15% compared to LRN and LRW. Although HRN emissions were slightly higher than HRW (total GHGs +4.56%, NH3 +4.99%), HRN final nitrogen content (4691.27 mg/kg) exceeded HRW (4514.96 mg/kg), attributed to sufficient carbon enhancing microbial assimilation. Conversely, low C/N with nitrogen-rich wastewater increased NH3 and N2O emissions (LRN vs LRW: +26.43% and +112.99%) due to carbon limitation. Thus, high initial C/N with nitrogen-rich wastewater reuse effectively reduces gaseous nitrogen loss and greenhouse gas emissions while maintaining compost maturity.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202607025
The Holocene alluvial-diluvial stratum of the Quaternary is characterized by high soil hydraulic conductivity and intense surface water-groundwater interaction, which leads to rapid and extensive migration of contaminants from landfills. To investigate the contaminant characteristics of a municipal solid waste (MSW) landfill in such strata, a case study was conducted at a landfill in southwestern China. Methods including the Nemerow pollution index and the potential ecological risk index were employed to systematically analyze the contamination of groundwater and soil, as well as the spatial distribution of organic matter and heavy metals. The results showed that the groundwater was severely contaminated (PI > 3). The maximum exceedance multiples for total bacterial count, ammonia nitrogen (NH4+-N), and total coliforms relative to the standard limits were 36, 9.5, and 8, respectively. The composition of the contaminants in groundwater was highly consistent with the characteristics of landfill leachate. For the soil, the concentrations of six heavy metals (Cu, Pb, Cd, Ni, Hg, and As) were all below the Class II screening values of the standard GB 36600—2018. Both the Nemerow pollution index (PI < 0.7) and the potential ecological risk index (RI < 150) indicated that the soil environment was safe. Regarding soil dissolved organic matter (DOM), humic-like substances (22.9% to 34.9%) and fulvic-like substances (22.4% to 27.5%) were the dominant components, and their fluorescence intensities exhibited an exponential decay trend with increasing soil depth. The speciation of Cu, Pb, As, Hg, and Ni was dominated by the residual fraction (52.33% to 90.32%). However, over 70% of Cd existed in active forms (exchangeable + Fe/Mn oxide-bound), suggesting a high migration risk. The horizontal distribution of heavy metals showed regional specificity, with high-value areas mainly concentrated in the screening waste and soil stacking areas. Vertically, Cu and Cd exhibited surface enrichment, while As, Hg, Pb, and Ni were enriched in the groundwater fluctuation zone. These findings indicate that groundwater in alluvial-diluvial strata is highly susceptible to leachate contamination, while soil heavy metal contamination is not significant, with low levels in the aquifer but a tendency to accumulate at the water-soil interface. It is recommended that during landfill remediation, attention be paid to anti-seepage measures in waste excavation and stacking areas, as well as the interception and remediation of the groundwater fluctuation zone, to prevent secondary contamination of soil and groundwater.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3984-5
Rechargeable aluminum batteries (RABs) are promising for large-scale energy storage due to high theoretical capacity, inherent safety, and abundant aluminum reserves. However, conventional AlCl3-based ionic liquid electrolytes suffer from high cost, uncontrolled dendrite growth, and severe anode corrosion. Here, a molecular-level ligand engineering strategy is proposed, employing nitrogen-containing cyclic amides with tunable N–H functionalities to modulate the coordination environment of deep eutectic electrolytes (DEEs). Combined experimental and theoretical investigations reveal that the α-pyrrolidone-based DEE (PDEE) possesses a wider electrochemical window, higher ionic conductivity, and lower polarization. Precise N–H regulation optimizes cationic ligand and chloroaluminate anion interactions, accelerating ion transport to facilitate uniform Al deposition without dendrites. The amine functionalities enable in situ construction of a uniform inorganic-organic bilayer solid electrolyte interphase, mitigating anode corrosion and enhancing long-term interfacial stability. As a result, Al//Al symmetric batteries with PDEE achieve stable cycling for over 2000 hours, while Al-graphite full batteries demonstrate negligible capacity decay after 6000 cycles. This study establishes that ligand molecular engineering offers an effective strategy for optimizing DEEs, enabling durable and high-performance RABs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3825-x
Polymer-based dielectric materials with high energy density and thermal stability are critical for modern electric/electronic industries. Polyimide (PI) based materials are promising due to their high temperature resistance and chemical inertness, yet their inherently low dielectric constant and limited charge-discharge energy density restrict applications in film capacitors. While incorporating ferroelectric or conductive fillers can enhance dielectric performance, batch-to-batch inconsistency and physical deterioration remain problematic. This study focuses on molecular structure design and modulation, preparing hyperbranched polyimides with different dianhydride monomers and branching degrees. The effects of chain packing density with polar groups on dielectric and energy storage performances were systematically investigated via experimentation and molecular simulation. Results demonstrate a significant correlation between monomers' electrical distribution and packing density in polymer systems. Molecular simulation further elucidated the underlying mechanism. This work establishes a foundation for designing polymer-based dielectric materials with high dielectric and energy storage performances at the molecular level.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3921-2
Moisture-enabled energy harvesting technologies offer a promising route for self-powered strain sensing, yet conventional generators suffer from slow response, poor recovery, and limited multidirectional resolution. Here, we report a stretchable thermoplastic polyurethane (TPU) nanofiber moisture-enabled electric generator (MEG) with highly aligned ion channels. A carbon black/sodium dodecylbenzene sulfonate (CB/SDBS) layer is coated on the TPU membrane, while carboxymethyl cellulose (CMC) and acidified poly(sodium 4-styrenesulfonate) (HPSS) are applied on opposite sides, establishing lateral hydrophilicity and ion gradients to drive directional ion migration. The planar MEG is lightweight, flexible, and requires no fully covered electrodes, enabling conformity to complex deformations. The aligned channels reduce ion migration tortuosity, enhancing ion transport efficiency and flux. As a result, the aligned MEG (ATMEG) delivers 0.2 V and 0.51 μA cm−2 at ~90% relative humidity, corresponding to 400% and 287% enhancements compared with the unaligned MEG (UATMEG). The ATMEG also exhibits ultrafast response (0.16 s) and recovery (0.08 s). Utilizing its anisotropic characteristics, a multidirectional self-powered strain sensor is developed, capable of distinguishing both the amplitude and direction of human motion, demonstrating strong potential for adaptive wearable electronics and intelligent motion monitoring.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60658-5
Sulfur dioxide emitted from combustion of sulfur-containing aromatic compounds in fuels is a major contributor to atmospheric pollution. Oxidative desulfurization (ODS) has become a crucial complement to hydrodesulfurization (HDS) due to its mild reaction conditions and high efficiency in removing refractory aromatic sulfides. Metal doping is an effective strategy to modulate the electronic structure of catalysts and enhance catalytic performance. In this study, Mn-doped Co-V-O metal oxide (Mn-Co-V-O) was synthesized via a reflux method followed by high-temperature calcination. The structure, morphology, and surface chemical composition were characterized by FT-IR, XRD, SEM, XPS, and UV-vis DRS. The ODS performance toward dibenzothiophene (DBT) was evaluated using molecular oxygen as a green oxidant. Results indicated that Mn doping significantly enhanced the ODS activity compared to undoped Co-V-O. Under optimized conditions (110 °C, 0.03 g catalyst, 150 mL/min O2 flow, 20 mL model oil), a direct DBT removal rate of 81.6% was achieved. When combined with extraction, the desulfurization rate increased to 98.0%. Mechanistic studies revealed that Mn doping increased the surface oxygen vacancy concentration, facilitating oxygen activation to generate superoxide radicals (·O2−). Radical trapping experiments confirmed that ·O2− was the key active species responsible for selective oxidation of DBT to DBTO2. This study provides a reference for designing efficient metal oxide catalysts for deep oxidative desulfurization.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025041505
To combat severe air pollution, China has implemented a series of air pollution control action plans since 2013, effectively alleviating PM2.5 pollution. However, PM2.5 concentrations in most cities within the Fenwei Plain still exceed national standards. This study systematically evaluates PM2.5 concentration changes across two policy phases (2013–2020) using the Community Multiscale Air Quality (CMAQ) model, quantifying contributions of meteorology and emissions, and analyzing sectoral source changes. Results show that annual average PM2.5 concentration declined cumulatively by 19% during 2013–2020. In the first phase (2013–2017), regional PM2.5 decreased by 3% annually, with most improvement in winter; however, due to unfavorable meteorology, concentrations increased in Xi'an and Xianyang. In the second phase (2017–2020), PM2.5 declined by an additional 16%, with more effective control measures, particularly in spring and autumn. Emission reductions dominated in both phases, with stronger effects in the second phase (−8 μg·m−3), significantly outweighing adverse meteorological contributions (+3.5 μg·m−3). Nevertheless, many cities still face challenges from unfavorable meteorology, highlighting the need for future policies to account for meteorological influences. Emissions from industrial, energy, and agricultural sources decreased significantly across both phases. However, during winter heating periods, residential emissions emerged as a source equal in importance to industrial emissions, becoming a key target for future emission controls.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608007
The Minjiang River Basin, subjected to combined pollution from domestic, agricultural, and industrial sources, has become a typical sensitive area for studying the environmental behavior of emerging contaminants such as antibiotics. This study conducted a cross-year comparative analysis of the composition and concentrations of antibiotics in water samples from nine sampling sites during the dry season in November 2022 and 2024. The findings revealed: 1) After the implementation of the "National Action Plan for Reducing Antimicrobial Use in Livestock", the detection concentrations of tetracycline antibiotics (TCs) decreased (e.g., doxycycline concentrations dropped from 7.75 ng/L to undetectable levels), and the mixed risk quotient (MRQ) across the entire basin transitioned from medium to low risk. However, lincomycin (up to 4.6 ng/L), clarithromycin (1.3 ng/L), and florfenicol (0.6 ng/L) have emerged, indicating an increasing hidden ecological risk from substitution. 2) High-concentration antibiotic zones transferred from urban residential areas in 2022 to intensive aquaculture zones and upstream reservoir areas in 2024. The reduction in dry-season water flow intensified pollutant accumulation, synergistically enhancing the effects of tidal drag. Additionally, the conversion of agricultural land to aquaculture ponds led to increased use of alternative drugs (e.g., sulfamethazine), while policy interventions mitigated the exacerbation of urban antibiotic pollution by construction land. This study elucidates the migration patterns of antibiotic pollution under the synergistic effects of policy regulation and natural processes, emphasizing the need to address hidden risks of substitute drugs and the driving role of land-use changes, providing scientific basis for watershed-scale risk assessment and precise management of emerging pollutants.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608011
Tetracycline, a poorly biodegradable organic pollutant, poses a serious threat to aquatic environments. Fenton-like methods have attracted attention for their high efficiency in treating tetracycline-containing wastewater by generating hydroxyl radicals (·OH) via H2O2 activation, thereby improving wastewater biodegradability. This review systematically summarizes recent advances in improved Fenton methods (electro-, photo-, and sono-Fenton) and heterogeneous Fenton systems, detailing reaction mechanisms, treatment efficiencies, and technical features. Under optimized conditions, tetracycline removal rates exceed 90% for various methods. Heterogeneous Fenton methods demonstrate superior applicability over a wider pH range, reduced iron sludge production, and excellent catalyst recyclability, representing the most promising strategy for practical implementation. Future perspectives emphasize developing novel catalysts, optimizing reactor design, controlling toxic by-products, and integrating hybrid technologies to facilitate practical application.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608023
Zinc-containing steel dust sludge, a by-product of steelmaking, contains high levels of chlorine (Cl) along with valuable metals such as Fe, Zn, K, and Na. When recycled into the steel production process, Cl accumulates, causing sintering instability and severe corrosion of blast furnace linings. This study investigated water leaching for Cl removal from zinc-containing steel dust sludge. Under optimal conditions (liquid-to-solid ratio 5 mL/g, temperature 70 °C, time 60 min, rotation speed 160 r/min), the Cl leaching rate reached 87%. Furthermore, a three-stage countercurrent water washing process at a liquid-to-solid ratio of 6 mL/g and room temperature for 45 min achieved a Cl leaching rate exceeding 90%. The water washing also reduced the leaching toxicity of metals in the sludge to a certain extent. Characterization via XRD, SEM, FT-IR, and XPS revealed that water washing primarily dissolved soluble chlorides (NaCl, KCl, etc.), increasing the specific surface area from 2.71 to 10.11 m²/g and average pore size from 12.83 to 16.29 nm. These findings provide theoretical and technical support for efficient Cl removal from zinc-containing steel dust sludge, facilitating its safe resource utilization.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4036-4
Alkaline water electrolysis is a pivotal technology for large-scale green hydrogen production, yet its efficiency is constrained by sluggish hydrogen evolution reaction (HER) kinetics at industrial current densities. Here, we propose a synergistic dual-doping strategy to lower kinetic barriers for both Volmer and Heyrovsky steps. A robust amorphous NiCoV nanosheet electrode was synthesized via scalable one-step electrodeposition. In situ spectroscopic and kinetic characterizations reveal that hydrophilic V species optimize interfacial water by disrupting the hydrogen bond network, ensuring rapid supply of free water at the inner Helmholtz plane. Co dopants modulate electronic structure to facilitate electron transfer and optimize intermediate adsorption energetics. The NiCoV electrode requires an ultralow overpotential of 253 mV at -400 mA cm−2, surpassing most Pt-based catalysts, and maintains stability for over 200 h. Industrial validation in a scaled-up electrolyzer demonstrates a cell voltage of 1.89 V at 400 mA cm−2, achieving energy savings of 0.12 kWh m−3 H2 compared to commercial benchmarks. This translates to annual electricity savings of 1.33 × 10^6 kWh for a medium-scale demonstration project, highlighting immense potential for sustainable industrial applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4014-3
Laser-induced graphene (LIG) methods, including photothermal and photochemical approaches, are promising for flexible electronics yet face distinct limitations. Photothermal methods often produce graphene with uncontrolled structural and functional properties, while photochemical methods are restricted to a narrow range of precursors. To address these limitations, we propose a pressure-driven LIG (P-LIG) method that uses transient laser-generated pressure fields as an additional control parameter to improve graphene quality. An integrated framework combining ultrafast pump–probe interferometric imaging, large-scale molecular dynamics (MD) simulations, and explainable artificial intelligence (XAI) was developed to investigate this approach. Time-resolved measurements reveal the generation of transient pressure fields during femtosecond laser irradiation of polyimide films, confirming pressure as an intrinsic feature of the process. MD simulations under controlled pressure conditions demonstrate that pressure promotes the nucleation and stacking of graphene layers, resulting in more continuous and planar graphitic networks. XAI analysis quantitatively identifies the important contributions of pressure. These results confirm that the transient pressure introduced by the P-LIG method plays a key role in promoting more ordered, continuous, and planar graphene networks, and enhancing structural integrity and material quality beyond traditional methods. This provides a practical pathway for improving the performance and reliability of LIG-based flexible electronic devices.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3998-8
Constitutional isomerism in covalent organic frameworks (COFs) has emerged as a powerful strategy to tailor material properties for photocatalytic applications. Here, we report the design and synthesis of two isomeric multicomponent COFs (MC-COFs) via Schiff-base condensation followed by Povarov reaction, converting imine linkages into quinoline structures. These isomeric MC-COFs exhibit opposing C=N bond orientations and distinct phenyl group alignments within the COF pores, leading to different torsion angles in the COF layers. Structural analyses reveal that enhanced planarity promotes π-π stacking and electron delocalization, resulting in favorable band structures and reduced exciton binding energies. Consequently, the optimized COF achieves a superior hydrogen peroxide (H2O2) production rate of 3128 μmol g−1 h−1 under visible light irradiation. This work underscores the critical influence of structural isomerism on the photocatalytic efficiency of MC-COFs and provides insights for rational design of high-performance COF-based photocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4144-y
Developing efficient strategies for electrically manipulating two-dimensional magnetism at room temperature is a key challenge in contemporary spintronics. In this study, we demonstrate giant electromechanical control over the magnetism of the room-temperature van der Waals ferromagnet Fe3GaTe2 by integrating it with the ferroelectric α-In2Se3. Modest gate voltages lead to an almost complete suppression of the coercive field by 96.5%, corresponding to a remarkable peak modulation sensitivity of ~8.1 mT V−1, which stands out among existing van der Waals magnetoelectric systems. Importantly, this substantial magnetoelectric response is predominantly unaffected by voltage polarity, as both positive and negative gate voltages induce similar magnetic modulation effects. To elucidate the underlying mechanism, we tracked the voltage-induced Raman spectral changes, revealing a peak shift of 1.7 cm−1 that accurately represents an effective in-plane tensile strain of ~1.42% under an equivalent bias, demonstrating polarity independence as well. The synchronized magnetic response and strain variation unequivocally indicate that the induced tensile strain serves as the fundamental physical driver behind the magnetic modulation. Additionally, density functional theory calculations corroborate that the reduction in magnetic anisotropy induced by tensile strain results in a decrease in the coercive field. Our work establishes a novel and efficient approach for achieving voltage control of magnetism at room temperature in van der Waals multiferroic heterostructures, highlighting their significant potential for applications in ultra-low-power magnetic logic and sensing technologies.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4052-0
Cutaneous wound infections affect millions of patients annually worldwide, and early diagnosis is critical for timely anti-infection treatment. Bacterial infections alter wound pH, offering a promising diagnostic approach. Here, a diagnostic smart dressing (CMC-PDBI) is developed by ultraviolet-initiated crosslinking of a pH-responsive indicator coating, incorporating modified bromothymol blue, onto a carboxymethyl cellulose substrate. The dressing exhibits superior pH-triggered color-changing performance in both phosphate buffer solution and bacterial cultures across the pH range associated with wound infection (orange at pH 6.0, green from pH 6.5 to 7.5, blue at pH 8.0). In a murine wound infection model, CMC-PDBI indicates infection two days before symptomatic manifestation. Early therapy guided by the dressing accelerates wound healing and reduces inflammation. A smartphone application (InfectSense) assists in identifying infection risk. This work presents a novel early-warning platform for qualitative visual diagnosis of wound infections before clinical symptom onset, with high potential for clinical and home care settings.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60668-8
A series of Co-based molecular sieve catalysts with varying Si/Al ratios was synthesized via impregnation. Microstructural properties of Co active sites were characterized by XRD, TEM, Raman, H2-TPR, Py-FTIR, and XPS. Results indicate that surface Co species predominantly exist as CoOx nanoclusters and isolated Co2+, with the latter exhibiting superior N2O decomposition activity. Decreasing the Si/Al ratio of the MFI zeolite promotes the formation of isolated Co2+ active sites, thereby enhancing catalytic performance. Compared to Co/S-1 (pure silica support), the Co/HZ60 catalyst (low Si/Al ratio ZSM-5) lowers the temperature for complete N2O decomposition by 80 °C and demonstrates excellent resistance to O2 and NO. The strong interaction between the zeolite framework and Co2+ inhibits oxidation to Co3+, improving N2O adsorption and activation. This work provides a rational design strategy for efficient and stable Co-based catalysts for N2O abatement in industrial tail gases.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4175-3
The precise manipulation of microdroplets (diameter < 20 μm) on solid substrates is critical for applications in environmental monitoring, targeted drug delivery, clinical diagnostics, and public health. A major challenge is contact angle hysteresis (CAH), which pins droplets and impedes mobility. Here, we introduce a crack-mediated capillary bridging strategy for efficient capture and directional transport of microdroplets. The approach employs a stretchable elastomeric substrate with island-like microstructures. Under longitudinal tensile stress, controlled fracture generates densely packed, directionally oriented surface cracks. These fissures induce localized capillary forces that counteract adhesion-induced resistance, enabling programmable droplet motion. Experiments capturing airborne pathogenic agents demonstrated a 14.2-fold enhancement in enrichment efficiency compared to flat surfaces. This work integrates fracture mechanics with capillary-driven fluid dynamics, establishing a framework for next-generation microfluidic systems. The findings offer promising avenues for biosensing, pollutant analysis, and interdisciplinary applications.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3631-1
Anion exchange membrane water electrolysis (AEMWE) offers cost and dynamic-response advantages over proton exchange membrane systems, yet commercial deployment is constrained by the alkaline stability of anion exchange membranes (AEMs) and the sluggish kinetics of non-precious metal catalysts. This work reports a series of poly(terphenyl-diphenylmethane piperidinium) (QPDPMTP) membranes synthesized with varied diphenylmethane (DPM) content. The alkyl chain of DPM induces pronounced microphase separation and elevates free volume fraction, yielding an OH− conductivity of 152 mS cm−1 at 80 °C for QPDPMTP-10. After 1032 h immersion in 6 M NaOH at 80 °C, the membrane retains 90.7% of its initial conductivity. An AEMWE cell integrating QPDPMTP-10 with a non-precious NiFeCo LDH/NiS/NF anode achieves 3.11 A cm−2 at 2 V in 1 M KOH at 80 °C and sustains 1 A cm−2 for 1800 h under gradient KOH concentration. These results establish a viable pathway for durable, low-cost AEMWE systems.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3643-8
Inverted perovskite solar cells (PSCs) suffer from defect-mediated nonradiative recombination and inefficient charge extraction, particularly at the buried interface and grain boundaries (GBs), which limit power conversion efficiency (PCE) and operational stability. This study introduces a multifunctional phosphonic acid molecule, (2-(3,6-bis(trifluoromethoxy)-9H-carbazol-9-yl)ethyl)phosphonic acid (M28), as an additive in the perovskite precursor solution. M28 spontaneously segregates toward the buried interface and GBs, fulfilling three roles: (1) slowing crystallization to enlarge grains and improve film quality, (2) passivating defects to suppress charge recombination, and (3) inducing p-type doping to create an extra electric field that promotes hole transport. Devices incorporating M28 achieve a champion PCE of 25.96% and retain 80% of initial efficiency after 1500 h of maximum power point tracking. This work demonstrates the efficacy of multifunctional phosphonic acid additives in addressing buried-interface and GB defects, offering a viable route to high-performance, stable inverted PSCs.