SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4267-y
The synthesis of two-dimensional MBenes from MAB-phase ceramics is impeded by uncontrolled etching kinetics that compromise structural integrity and yield. This study introduces a vacuum molten salt strategy to regulate space-charge accumulation during the selective removal of Al from Mo2AlB2, producing honeycomb-like architectures. The vacuum environment suppresses oxidative side reactions and modulates ionic transport, enabling precise control over etching depth and morphology. The resulting Mo2AlB2 exhibits exceptional electromagnetic wave absorption, with a minimum reflection loss of -56.3 dB at 2.4 mm and an effective absorption bandwidth of 6.8 GHz. These metrics surpass conventional etching-derived MBenes by a factor of 2.5 in attenuation capacity. The space-charge-regulated mechanism is elucidated through in situ spectroscopic and computational analyses, revealing that vacancy-induced charge redistribution governs the etching front propagation. This work establishes a scalable route for high-purity MBenes with tailored porosity, addressing critical bottlenecks in energy absorption and catalytic applications. The vacuum molten salt approach eliminates the need for hazardous HF, offering a safer and more environmentally benign pathway for industrial translation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4358-y
Oxygen electrocatalysis underpins the viability of proton-exchange-membrane water electrolyzers and rechargeable Zn–air batteries, yet commercial deployment remains constrained by the sluggish kinetics of the oxygen evolution reaction (OER) and oxygen reduction reaction (ORR), which impose overpotentials exceeding 300 mV and accelerate catalyst degradation. This review, submitted to SCIENCE CHINA Materials (Manuscript ID SCMs-2026-1384.R1), synthesizes recent advances in rational catalyst design guided by the direct observation and theoretical treatment of reaction intermediates. The authors compile evidence from in situ characterization and computational modeling to establish that intermediate binding energies—particularly *OOH, *O, and *OH on Ru, Ir, Co, and Fe–N–C active sites—serve as predictive descriptors for activity and stability. Cited works demonstrate that 4f-modified Ru–O polarity, spin-balanced Janus Ir–Co magnetic atoms, and aligned d-orbital energy levels in dual-atom sites can shift rate-determining steps and lower activation barriers. The review further examines interfacial microenvironment engineering via anion adsorption, ligand functionalization, and S,N co-doped carbon confinement, which modulate local pH, water orientation, and mass transport. Emphasis is placed on dual-site mechanisms, including FeN6–CoN4 and Co-substituted Ni coordination polymers, where synergistic strong–weak adsorption coupling alters ORR pathways from adsorbate evolution to dissociation. The manuscript provides a critical assessment of descriptor reliability, noting that intermediate binding alone cannot capture dynamic reconstruction, electrolyte effects, or long-term operational stability. By integrating in situ spectroscopy with descriptor-based design, the review offers a framework for translating mechanistic insight into durable, cost-effective oxygen electrocatalysts for industrial electrolysis and metal–air batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4416-8
Copper(I)-based carbene-metal-amide (CMA) emitters offer an earth-abundant alternative to precious-metal phosphors for organic light-emitting diodes (OLEDs), yet efficient green emission remains scarce due to limited π-extension and unbalanced charge-transfer characteristics of N-heterocyclic carbene (NHC) ligands. This work introduces a pyrimidine-fused NHC ligand (CF3PMI) with balanced π-accepting ability, synthesized via a one-pot protocol in good yields. The resulting Cu(I)-CMA complex CF3PMI-BFCF3 exhibits green thermally activated delayed fluorescence (TADF) in doped thin films, with a photoluminescence quantum yield (PLQY) of 90% and a short emission lifetime of 1.16 μs. A vacuum-deposited OLED achieves green electroluminescence centered at 514 nm with an external quantum efficiency (EQE) of 22.7%. Furthermore, a hyperfluorescent OLED employing CF3PMI-BFCF3 as a sensitizer delivers an EQE of 21.8%, green emission at 537 nm, and a narrow full width at half maximum (FWHM) of 30 nm. These results establish a viable molecular design strategy for high-performance green-emitting Cu(I)-based TADF materials and provide a convenient synthetic route for Cu(I)-CMA emitters.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4468-6
The proliferation of multispectral detection platforms demands materials that simultaneously satisfy electromagnetic interference (EMI) shielding and infrared (IR) camouflage without compromising radio-frequency (RF) transmission. Conventional MXene films exhibit exceptional EMI shielding (>40 dB) but suffer from high IR emissivity and severe RF reflection, precluding integration with wave-transmitting arrays. This work introduces liquid metal (LM)-modified MXene composite films engineered via structural patterning to decouple optical, IR, and RF responses. The LM phase, dispersed within the MXene interlayer galleries, reduces free-electron density and tailors the dielectric loss, while a periodic array architecture creates impedance-matched windows for RF transmission. The resulting films achieve an EMI shielding effectiveness of 36 dB at 510 µm thickness, with a low IR emissivity of 0.36 and an RF transmittance exceeding 80% in the X-band. The patterning strategy suppresses surface current continuity, mitigating the trade-off between shielding and transmission. These metrics represent a 20% improvement in IR camouflage and a 15% enhancement in RF transparency relative to pristine MXene films. The composite films also demonstrate mechanical flexibility, retaining 95% of initial conductivity after 1,000 bending cycles. This work establishes a scalable route for multispectral-compatible materials critical for next-generation stealth and communication systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4238-2
Infrared nonlinear optical (IR NLO) materials are critical for laser frequency conversion, yet their performance is often constrained by a trade-off between second harmonic generation (SHG) efficiency and laser-induced damage threshold (LIDT). Here, we report a new ternary diamond-like compound, AlGaS3, which successfully balances these competing demands. AlGaS3 crystallizes in a noncentrosymmetric structure composed of wide HOMO-LUMO gap [AlS4] tetrahedra and NLO-active [GaS4] tetrahedra. The compound exhibits a wide experimental optical band gap of approximately 3.38 eV, which is significantly larger than that of the benchmark AgGaS2 (AGS, ~2.70 eV). This wide band gap contributes to a high laser-induced damage threshold (LIDT) of approximately 6.0 times that of AGS, as determined by powder-based measurements. Notably, AlGaS3 also demonstrates a phase-matching SHG response of approximately 0.5 times that of AGS at a fundamental wavelength of 2.09 μm, with particle size-dependent behavior confirming phase-matchability. The combination of wide band gap, high LIDT, and moderate SHG response positions AlGaS3 as a promising candidate for high-power IR NLO applications. This work provides a viable strategy for designing IR NLO materials with enhanced laser damage resistance by incorporating wide-gap tetrahedral units.
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/s40843-025-3695-8
Sulfur-based lithium-ion batteries, particularly those employing sulfurized poly(acrylonitrile) (SPAN) cathodes and graphite (Gr) anodes, offer high theoretical capacity and low cost but suffer from temperature-dependent capacity decay. This study systematically investigates the electrochemical dynamics and capacity decay mechanism of SPAN||Gr pouch cells cycled at 25–55 °C. Multiscale analyses reveal that capacity fade arises from active lithium loss and increased resistance, both accelerated by higher temperatures. Active lithium loss is primarily attributed to dead lithium formation and thickening of the solid electrolyte interphase (SEI) and cathode electrolyte interphase (CEI), while resistance increase is predominantly due to SEI/CEI thickening. As temperature rises, active lithium loss becomes the dominant decay factor. Leveraging the consistent decay mechanism across temperatures, an accelerated aging model based on the Arrhenius equation is developed: y = 0.9x + a. This model accurately predicts cycling parameters at specific temperatures and reduces testing time by 50% when extrapolating from 55 °C to 25 °C. These insights provide critical guidance for developing long-life sulfur-based batteries for practical energy storage applications.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61066-9
Carbon materials suffer from limited dielectric loss, resulting in poor impedance matching and inadequate microwave attenuation. To address this, hierarchical structures with synergistic loss mechanisms are sought. Here, biomass cattail serves as a sustainable precursor for nitrogen-doped carbon nanotube arrays decorated with Fe3C nanoparticles via chemical vapor deposition, yielding Fe3C@NCNTs/CMTs composites. The crystallinity, tuned by calcination temperature, critically influences microwave absorption. At 800 °C, the composite achieves a minimum reflection loss of –35.8 dB and an effective absorption bandwidth of 7.02 GHz at a thickness of only 1.7 mm, with an ultralow filler loading of 10 wt%, covering the entire Ku band and part of the X band. This performance stems from enhanced magnetic loss and multiple dielectric polarization mechanisms. The study demonstrates a promising strategy for designing biomass-derived carbon-based broadband microwave absorbers.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3919-0
Nuclear energy is critical for sustainable economic development and achieving carbon neutrality. With only about 6.14 million tons of terrestrial uranium, sufficient for ~70 years of global nuclear power plant operation, the recovery of uranium from seawater and spent fuel is essential for long-term nuclear fuel supply. The ocean contains approximately 4.5 billion tons of uranium, which could sustain nuclear power for ~2000 years if efficiently extracted. However, seawater uranium extraction faces significant challenges due to the extremely low uranium concentration (~3.3 ppb), high concentrations of competing ions, natural organic matter, and marine biofouling. This perspective reviews representative laboratory advances, including sulfonated covalent organic frameworks (S-COF) achieving a sorption capacity of 31.5 mg/(g·day) with high selectivity, amidoxime-based organic cages with a capacity of 11.97 mg/g over 30 days, and a micro-redox reactor strategy that continuously regenerates binding sites. Electrochemical methods have also shown promise for converting soluble U(VI) to insoluble U(IV) oxides. Despite these advances, the transition from laboratory powders to durable marine materials remains problematic. Key gaps include the need for antibacterial properties, mechanical stability under wave action, cost competitiveness with terrestrial mining, and environmental safety of nanomaterials. Artificial intelligence (AI) is proposed to accelerate the design of high-performance, stable materials. This perspective emphasizes the necessity for interdisciplinary research to bridge the gap between bench-scale innovations and practical ocean deployment.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3807-8
Electrocatalytic co-reduction of CO2 and nitrate offers a sustainable route for urea synthesis, valorizing nitrogenous waste and CO2. However, achieving high-performance urea electrosynthesis under ambient conditions remains challenging due to the need for simultaneous activation of CO2 and efficient H2O dissociation to supply active *H for *NOx hydrogenation, ultimately forming key C- and N-containing intermediates for C–N coupling. Here, we report a bifunctional Pd-single-atom-modified Cu (Pd1Cu) nanorod catalyst that synergistically promotes adsorption and stepwise activation of CO2 and H2O, steering the reaction pathway toward selective urea synthesis. Integrating experimental evidence, in situ spectroscopy, and computational analyses, we disclose that atomically dispersed Pd sites kinetically favor co-generation of *CO and *NH2 via H2O dissociation-driven proton transfer, forming an optimal intermediate balance. The dual metal active sites enhance C–N coupling via combined electronic and geometric effects, substantially lowering the reaction energy barrier and improving selectivity. This work provides a rational design strategy for advanced multifunctional catalysts for urea electrosynthesis, contributing to carbon neutrality and waste nitrogen valorization.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3815-0
The development of bifunctional electrocatalysts capable of integrating biomass-derived platform molecule oxidation with organic reduction offers a promising strategy for simultaneously enhancing energy efficiency and generating high-value chemicals. However, designing catalysts that exhibit both high activity and stability in integrated systems remains a significant challenge. Herein, we report a self-supported electrode composed of nitrogen-doped carbonized wood (NCW) supported NiCo nanosheets (NiCo 0.3/NCW) that enables the electrocatalytic 5-hydroxymethylfurfural oxidation to produce 2,5-furandicarboxylic acid (FDCA) and the nitrobenzene reduction to yield aniline in an integrated electrochemical cell. The NiCo 0.3/NCW electrode achieves the production of FDCA and aniline at a low cell voltage of 1.7 V, with ~99% anodic and ~92% cathodic Faradaic efficiencies, respectively. Experimental characterizations disclose that the hierarchical porous NCW architecture promotes the dispersion of active sites, while nitrogen doping strengthens metal–support interactions. In-situ spectroscopic experiments combined with density functional theory (DFT) calculations reveal that cobalt incorporation tunes the electronic structure of nickel, thus optimizing substrate and intermediate adsorption, and lowering energy barriers. These effects ultimately enhance the performance of the natural wood-derived catalyst in integrated biomass valorization and selective organic electrosynthesis.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3665-2
Immuno-phototherapy faces a critical bottleneck: achieving high singlet oxygen (1O2) quantum yield and efficient photothermal conversion simultaneously under a single near-infrared (NIR) laser. Here, we report an acceptor-donor-acceptor (A-D-A) structured molecule, 3,9-bis(2-methylene-((3-(1,1-dicyanomethylene)-6/7-methyl)-indanone))-5,5,11,11-tetrakis(4-hexylphenyl)-dithieno[2,3-d:2',3'-d']-s-indaceno[1,2-b:5,6-b']-dithiophene (m-ITIC), formulated into nanoparticles (NPs) via self-assembly with DSPE-PEG-NH2. The NPs exhibit strong NIR absorption and fluorescence at 688 and 768 nm, respectively. Under single-laser irradiation, they generate heat, superoxide anion (O2•−), and 1O2, with a 1O2 quantum yield of 56.8% and photothermal conversion efficiency (PCE) of 27.4%. This enables NIR fluorescence imaging-guided synergistic photodynamic therapy (PDT) and photothermal therapy (PTT). Notably, the nanoplatform induces PANoptosis—a coordinated cell death program integrating pyroptosis, apoptosis, and necroptosis—in tumor cells, amplifying immunogenic cell death (ICD). This triggers robust dendritic cell activation, macrophage polarization toward M1 phenotype, elevated CD8+ T cell infiltration, and suppression of immunosuppressive Treg cells, leading to significant tumor growth inhibition and prevention of lung metastasis in vivo. Therapeutic efficacy was validated in patient-derived tumor organoids, underscoring translational potential. This study presents a novel single-laser-activated nanoplatform that simultaneously mediates efficient photothermal and photodynamic effects and induces PANoptosis-driven ICD for synergistic cancer immunotherapy.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604019
A two-stage electrostatic precipitator (ESP) integrating a sawtooth-rod electrode precharging unit and a plate-plate collection unit was developed for simultaneous removal of fine particles and volatile organic compounds (VOCs) from catering fumes. Using KCl particles and toluene as surrogates, the system achieved a fine particle (<0.3 µm) collection efficiency of 91% and a total particle collection efficiency exceeding 98% at applied voltages of +12 kV (sawtooth-rod) and -8.5 kV (plate-plate), with an ozone concentration of 176.9 mg/m³. The presence of particles enhanced toluene degradation, increasing removal efficiency from 29.2% to 53.1%. Positive DC discharge on the sawtooth-rod electrode yielded a higher corona current (800 µA vs. 375 µA for negative) and lower ozone generation (101.4 mg/m³ vs. 176.9 mg/m³), indicating superior suitability for catering fume treatment. The stable discharge characteristics of the sawtooth-rod electrode reduce energy consumption and extend operational cycles, offering a promising technical pathway for efficient, compact, and intelligent ESP systems in catering fume purification.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3830-6
Controlled fabrication of artificial multiple-stranded helices is central to deciphering chirality complexity and hierarchical self-assembly processes. Inspired by biological helical nanostructures, we designed a twisted figure-of-eight chiral macrocycle (M1) from pyrene and benzene diimide subcomponents to direct hierarchical assembly of double- and quadruple-stranded superhelices. Single-crystal X-ray diffraction reveals that M1 undergoes charge-transfer and CH···π interactions-driven helical wrapping, forming right-handed (P) single strands that intertwine into quadruple π-helical superstructures. Crucially, the macrocycle's adaptive cavity and interstitial voids could bind electron-deficient naphthalene diimide (NDI) guests through charge transfer interactions, triggering transformation to left-handed (M) double helices. This structural shift induces helicity inversion and optical anisotropy changes, demonstrating a rare case of crystalline-state multiple-helix conversion with supramolecular chirality inversion. This work establishes a template-free methodology for synthesizing multiple-stranded π-helices and controlling their transformations through supramolecular engineering.
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.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3790-5
Near-infrared (NIR) phosphors with high quantum efficiency (QE) and thermal robustness are critical for phosphor-converted light-emitting diodes (pc-LEDs). Here, a Cr3+-activated Lu2BaAl4SiO12 (LBASO) garnet phosphor is engineered via chemical unit cosubstitution of [Ba2+-Si4+] for [Lu3+-Al3+] in Lu3Al5O12 (LuAG), inducing a strong crystal field that yields NIR emission at 705 nm. The optimized LBASO:0.07Cr3+ exhibits an internal quantum efficiency (IQE) of 84.82% and external quantum efficiency (EQE) of 46.02%. Notably, it demonstrates anti-thermal quenching (ATQ) with 126.03% of its initial intensity at 498 K under 442 nm excitation, attributed to a wide band gap, weak electron-phonon coupling, defect trap energy levels, high structural rigidity, and optimized electron population distribution. A NIR pc-LED fabricated with this phosphor achieves an output power of 134.99 mW and photoelectric conversion efficiency of 11.4% at 100 mA drive current. These results underscore the potential of LBASO:Cr3+ for applications in plant lighting, night vision, and nondestructive analysis.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3900-8
Memristors, which leverage ion migration for resistance switching, offer breakthroughs in bionic perception, information security, and edge computing but face bottlenecks in functional integration and stability. Herein, we explore all-inorganic Cu3SbI6 nanocrystals (NCs) & PMMA composite memristors (Ag/PMMA&Cu3SbI6/ITO) regulated by NCs doping (0–15 wt%). The devices operate via electric field-induced Ag+ ion migration and conductive filament dynamics, where NCs act as local electric field enhancers. At a doping concentration of 4 wt%, stable bipolar switching (Ron/Roff > 2 × 10^3, cycling endurance > 700 cycles) enables the simulation of biological nociception/Pavlovian reflexes and the construction of basic logic gates. At 2 wt%, sparse NCs induce random filament formation for encryption key extraction, which integrates with 4 wt% logic gates to enable efficient encryption/decryption of text/image data. This work provides a strategy for designing multifunctional memristors by regulating ion transport through nanocrystal concentration, offering references for related functional integration and cross-disciplinary applications.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510029
Low hydrolysis efficiency is a core bottleneck in anaerobic digestion (AD) of lignocellulosic agricultural residues, limiting methane production and resource utilization. This study optimized thermal hydrolysis pretreatment (THP) of corn straw (CS) using response surface methodology (RSM) to enhance methane yield. The optimal conditions were determined as solid-to-liquid ratio of 51.0–57.5 mg·mL−1, pretreatment time of 74–81 min, and temperature of 182.5–197.5 °C. Under the optimal combination (52.3 mg·mL−1, 78.4 min, 191 °C), cumulative methane yield increased from 218.0 to 362.9 mL·g−1 VS, a 66.7% improvement over untreated CS. Characterization via XRD, FTIR, and SEM revealed that THP disrupted the lignocellulosic structure, reducing lignin content from 21.5% to 8.3% and crystallinity index (CrI) from 70.83% to 61.95%. Inhibitory derivatives generated during THP included furfural (1.69 mg·mL−1), 5-methylfurfural (2.44 mg·mL−1), and phenol (23.14 mg·L−1), with a theoretical combined inhibition rate of 7.26%. The promotion effect on methane production (66.7%) far exceeded the theoretical inhibition (7.26%), indicating that THP under optimized conditions is effective and environmentally controllable. This study provides a systematic framework for optimizing THP parameters to maximize methane production from agricultural residues.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025032403
An electrochemical sensor for lead ion (Pb2+) detection was developed based on a metal-organic framework (UiO-66-NH2) and conductive polymer polyaniline (PANI) composite. The UiO-66-NH2 was synthesized via hydrothermal method, and the UiO-66-NH2@PANI composite was prepared by in-situ polymerization. The composite was drop-coated onto a glassy carbon electrode (GCE) to fabricate the sensor. Material characterization was performed using X-ray diffraction (XRD), scanning electron microscopy (SEM), and Fourier transform infrared spectroscopy (FTIR). Electrochemical performance was evaluated by cyclic voltammetry (CV) and differential pulse voltammetry (DPV). Key parameters including loading amount, enrichment time, and pH were optimized. Under optimal conditions, the sensor exhibited a linear response to Pb2+ in the concentration range of 10–200 μg·L−1 with a correlation coefficient (R2) of 0.9960, and a limit of detection (LOD) of 9.8 μg·L−1. The sensor demonstrated good anti-interference, repeatability, and stability. Practical applicability was assessed by spiked recovery tests in Yellow River water and tap water, yielding recovery rates of 94.1%–100.8% with relative standard deviations (RSD) ≤3.84%. Comparative analysis with inductively coupled plasma mass spectrometry (ICP-MS) showed comparable accuracy, confirming the sensor's potential for reliable Pb2+ monitoring in environmental samples.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60762-1
The CO2 dry reforming of methane (DRM) is pivotal for CO2 utilization within the dual-carbon framework, offering advantages in carbon reduction and value-added chemical production. However, shaped catalysts suitable for industrial-scale DRM remain limited. This work constructs a monolithic catalyst using honeycomb cordierite as the structural support, systematically investigating the effects of organic and inorganic binders on coating structure and catalytic performance. Comparative studies reveal that the active coating fabricated with inorganic aluminum sol exhibits a continuous uniform morphology and excellent adhesion strength. During high-temperature calcination, elemental diffusion within Al2O3 networks bridges the cordierite surface with active catalyst particles, forming a (Ni-Mg)AlxO4 composite structure. This creates robust metal-support interactions between active sites and the residual alumina matrix. The interconnected mesoporous framework provides superior pore confinement, contributing to strong coating adhesion, enhanced activity, and improved resistance to carbon deposition in the monolithic m-NCM-Al-sol catalyst. In contrast, coatings derived from inorganic silica sol suffer from detachment and activity loss due to heterogeneous surface structures and poor adhesion. Organic binders demonstrate inferior performance in macroscopic coating uniformity, adhesion strength, mesoporous confinement, and localized electronic effects, resulting in the poorest catalytic performance. By optimizing aluminum sol coating parameters—binder content, active component dosage, and coating cycles—a synergistic balance between coating thickness and mass transfer is achieved. The optimized catalyst demonstrates excellent DRM performance, providing insights for constructing high-performance shaped catalysts with cordierite coatings.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025041804
Ethylene diamine tetra (methylene phosphonic acid) sodium (EDTMPS), an organic phosphonate scale and corrosion inhibitor, is widely used in industrial recirculating cooling water systems. Its efficient degradation in blowdown water is critical for water reuse. This study employed a plate-frame electrochemical advanced oxidation (EAOP) system with a boron-doped diamond (BDD) anode to degrade EDTMPS. The effects of operating conditions (temperature, voltage, liquid flow rate) and water quality parameters (pH, electrolyte concentration, chloride ion concentration) were systematically investigated. Optimal degradation efficiency of 99.48% was achieved at 50 °C, 300 mL·min−1, 7.0 V, pH 10, and 0.05 mol·L−1 Na2SO4. Electron paramagnetic resonance (EPR) characterization of chloride-containing systems indicated that reactive species included hydroxyl radicals, sulfate radicals, and possibly chlorine radicals. In a coexisting system with benzotriazole (BTA), EAOPs degraded EDTMPS and BTA with comparable efficiencies. The results demonstrate that BDD-based EAOPs is effective for removing organic phosphonates from low-chloride, low-hardness cooling water, offering a promising approach for blowdown water treatment and reuse.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026050701
Azo food colorants are persistent aquatic pollutants posing risks to ecosystems and human health. Utilizing biomass waste to produce low-cost activated carbon offers a sustainable strategy for their removal. In this study, activated carbon (HPR-AC) was synthesized from Haematococcus pluvialis residue via phosphoric acid activation, and its adsorption performance was evaluated using Sunset Yellow (SY), Ponceau 4R (P4R), and Tartrazine (TY) as model pollutants. The effects of solution pH, adsorbent dosage, initial dye concentration, and temperature on adsorption efficiency were systematically examined. Characterization by BET, FTIR, XRD, and XPS revealed that HPR-AC possesses a high specific surface area and an abundant mesoporous structure. The adsorption process was well described by the Langmuir isotherm and pseudo-second-order kinetic models, indicating monolayer chemisorption and an endothermic nature. At pH 5 and 55 °C, the maximum adsorption capacities reached 67.12, 79.72, and 72.75 mg·g−1 for SY, P4R, and TY, respectively. Statistical physics modeling further suggested a multilayer physical adsorption mechanism, primarily governed by pore filling, electrostatic interactions, hydrogen bonding, π-π stacking, and charge transfer. These findings provide both theoretical insights and empirical data for the valorization of H. pluvialis residue and the development of efficient, sustainable adsorbents for azo dye removal from water.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3843-9
Lignocellulose-based electromagnetic interference (EMI) shielding materials are gaining prominence across multiple sectors, driven by the growing EMI issues associated with rapid advances in communication technologies and electronic devices. These materials have demonstrated significant superiority over traditional EMI shielding solutions, which are often hampered by high cost and environmental concerns. This review emphasizes the excellent potential of lignocellulose as a cost-effective and flexible alternative to deliver the hierarchical structures and functional properties that qualify it for EMI shielding applications. The underlying EMI shielding mechanisms are then elucidated, with a focus on the benefits conferred by lignocellulose in such material systems. Furthermore, typical fabrication strategies for lignocellulose-based EMI shielding materials are comprehensively summarized, along with a discussion of their emerging applications in diverse scenarios. Finally, the challenges encountered in developing lignocellulose-based EMI shielding materials and their significant prospects for future boosting high-performance design and application are also outlined. The insights presented herein are expected to promote the development of efficient and green lignocellulose-based EMI shielding materials that meet the evolving demands of modern society.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3974-1
MAB-phase-derived compounds exhibit promising electromagnetic wave (EMW) absorption properties due to their unique layered structure and desirable physicochemical characteristics. Among them, Cr2AlB2 is particularly attractive owing to its excellent thermal and electrical conductivity. However, conventional synthesis of Cr2AlB2 requires inert gas protection to prevent oxidation, significantly increasing production costs and limiting its application in EMW absorption. To overcome this bottleneck, we report the successful synthesis of high-purity Cr2AlB2 in ambient air using the molten salt shielded synthesis (MS3) method. This approach not only isolates the material from oxygen interference but also reduces the synthesis temperature, offering a cost-effective and scalable route. The as-synthesized Cr2AlB2 exhibits outstanding EMW absorption performance: a minimum reflection loss (RLmin) of -42.10 dB at 12.6 GHz and a maximum effective absorption bandwidth (EABmax) of 3.44 GHz at a thickness of 1.9 mm. This work not only facilitates the large-scale production of Cr2AlB2 but also provides critical insights into its practical application as a high-performance EMW absorber.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4037-1
Nasopharyngeal carcinoma (NPC) poses a therapeutic challenge due to its anatomical complexity and the limitations of conventional treatments in achieving precise targeting and sufficient efficacy. Here, we report a multifunctional platform based on heat-triggered electrospray self-healing porous poly(lactic-co-glycolic acid) (PLGA) microspheres encapsulating indocyanine green (ICG), sequentially coated with a tannic acid-Fe3+ (TAF) metal-phenolic network and fibronectin (FN) for targeted photothermal/chemodynamic combination therapy. The resulting functional microspheres (PI-TAF@FN) exhibit an average size of 1.9 μm, excellent colloidal stability, heat-induced self-healing performance, and a high photothermal conversion efficiency of 51.4%. These microspheres specifically target NPC cells via FN-mediated integrin recognition, enabling ICG/TAF-mediated photothermal therapy under 808-nm laser irradiation and TAF-mediated chemodynamic therapy, leading to enhanced cancer cell apoptosis in vitro. In a mouse NPC model, the combined photothermo-chemodynamic therapy achieved effective tumor treatment with minimal systemic toxicity. Furthermore, the dual TAF and ICG components allow multimode FN-targeted T1-weighted magnetic resonance/fluorescence/thermal imaging for precision NPC management. This electrospray self-healing porous microsphere platform offers a unique theranostic strategy that can integrate diverse therapeutic and diagnostic components for precision oncology.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4072-3
All-inorganic, hole-transport-material-free (HTM-free), carbon-based perovskite solar cells (C-PSCs) have attracted significant attention due to their exceptional stability and low cost. However, their performance and commercial potential are constrained by poor interfacial contact, insufficient crystallinity, and energy level misalignment. In this work, we address these challenges via a molecular engineering strategy by introducing tetrakis(4-ethynylphenyl)methane (TEPM) as a multifunctional additive. The alkynyl moiety (C≡C) in TEPM coordinates with Pb2+ ions in perovskite precursors, synergistically slowing crystallization kinetics to regulate crystal growth and passivate deep-level defects. Consequently, CsPbI3 films exhibit larger grain sizes, improved crystallinity, and lower defect densities. Devices modified with TEPM achieved a record power conversion efficiency (PCE) of 20.01% (certified 19.58%). Additionally, unencapsulated devices retained 87.6% of their initial efficiency after 1080 h under ambient conditions (25 °C, 30% relative humidity), and maintained 94.0% of their initial efficiency after 730 h of continuous AM 1.5G illumination in air. This work sets a new efficiency benchmark for inorganic HTM-free C-PSCs and provides a versatile molecular engineering strategy for developing high-performance, stable perovskite photovoltaics.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3510-0
The activity and stability of single-atom catalysts (SACs) are intimately associated with the structure of supports. Herein, by employing a van der Waals (vdW) heterostructure support, we construct a highly active and durable Pt SAC for hydrogen evolution reaction (HER). The unique support consists of monolayer MoS2 attaching on hierarchical N-doped carbon nanocages (hNCNC), on which Pt presents as individual single atoms on the hNCNC and as island-like single-atom layers on the MoS2. The optimized Pt1-MoS2/hNCNC demonstrates low overpotential (11 mV at 10 mA cm−2) and high mass activity (5.6 A mgPt−1 at −20 mV) in 0.5 M H2SO4 solution, outperforming commercial Pt/C. Impressively, the Pt1-MoS2/hNCNC exhibits improved long-term stability in proton exchange membrane water electrolyzer relative to commercial Pt/C. The excellent HER performance is attributed to the regulated electronic structure, robust interaction of Pt atoms with MoS2/hNCNC and facilitated charge transfer. This study establishes an innovative strategy to develop a highly active and durable Pt SAC using vdW heterostructure supports.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3587-4
Unstable zinc interfaces arising from dendrite growth and parasitic reactions impede the practical deployment of rechargeable aqueous zinc-ion batteries. This study introduces 1-(2-pyridylazo)-2-naphthol (PAN) as a parts-per-million (ppm) level electrolyte additive to stabilize the Zn anode. Theoretical and experimental analyses reveal that PAN undergoes parallel adsorption on the Zn surface, establishing strong π-π interactions between adjacent molecules that efficiently repel water. The OH, pyridine N, and azo N groups in PAN chelate Zn2+, modulating Zn2+ diffusion and promoting uniform deposition while suppressing dendrite formation. A 10 ppm (0.04 mM) PAN addition extends the lifespan of a symmetrical cell to 1500 h at 2 mA cm−2 and 1 mAh cm−2. The Zn||Cu half-cell achieves a Coulombic efficiency of 99.91% over 3500 cycles at 5 mA cm−2 and 1 mAh cm−2. Full cells with NH4V4O10 and MnO2 cathodes exhibit enhanced cycling stability. Notably, a Zn||NH4V4O10 pouch cell retains 71.1% capacity after 250 cycles at 0.8 A g−1. This work demonstrates a viable strategy for selecting high-efficiency additives for aqueous metal-based batteries.