SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4435-9
Organic room-temperature phosphorescent (RTP) materials exhibit large Stokes shifts, high signal-to-noise ratios, and long emission lifetimes, positioning them as promising candidates for advanced anti-counterfeiting, bioimaging, sensing, and display technologies. Despite significant progress in molecular design—including radical-based systems, crystal engineering, host-guest doping, polymer matrix confinement, and supramolecular assembly—the integration of these materials with 3D printing remains in its infancy. This review critically examines the design strategies and research advances in 3D-printed organic RTP materials, focusing on the fundamental photophysical processes of intersystem crossing and suppression of non-radiative transitions. We analyze how printing parameters, matrix rheology, and layer-by-layer deposition influence phosphorescence quantum yields and lifetimes. Key challenges such as oxygen quenching, thermal degradation during extrusion, and poor interlayer adhesion are discussed with quantitative benchmarks. The review highlights that current 3D-printed RTP systems achieve lifetimes up to 1.2 s and quantum yields of 12% under ambient conditions, but scalability beyond 100 cm² remains limited by nozzle clogging and slow curing kinetics. By mapping material formulation to printability, we identify operational windows for extrusion-based and vat photopolymerization techniques. This work provides a roadmap for engineers to transition RTP materials from laboratory-scale demonstrations to industrial fabrication of complex 3D architectures with persistent luminescence.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3585-1
Semiconductor-based surface-enhanced Raman scattering (SERS) substrates have attracted significant attention due to their high uniformity, reproducibility, stability, and cost-effectiveness. However, the Raman enhancement in semiconductors primarily relies on the chemical mechanism (CM), which typically results in a lower enhancement capability compared to traditional noble metals. In this study, we developed a novel two-dimensional (2D) SERS substrate, Ag2Te nanosheets (NSs), synthesized through a simple one-step redox reaction utilizing 2D Te NSs as the template. The 2D Ag2Te NSs not only exhibit strong interfacial interactions with molecules, thereby supporting the CM, but also possess quasi-metallic properties with low resistivity (2.8 × 10−4 Ω cm) and high density of free electrons (4.15 × 10^22 cm−3), giving rise to a significant visible-region surface plasmon resonance (SPR) band and contributing to enormous electromagnetic mechanism (EM). By synergizing CM and EM, the 2D Ag2Te NSs SERS substrate achieved an ultra-low limit of detection (LOD) of 10−10 M with an enhancement factor (EF) of 2.6 × 10^7 for methylene blue (MB), outperforming most semiconductors, even rivaling noble metals. The quasi-metallic properties of 2D Ag2Te NSs also benefit their sensitivity to multiple molecules. The accuracy and reliability were demonstrated in real-sample detections with recoveries of 91.5%–108.3% for various target molecules. These excellent performances, combined with remarkable cost-effectiveness, demonstrate the potential of 2D Ag2Te NSs as a practical SERS substrate with broad applicability. Furthermore, the inherent structural simplicity of these nanosheets creates significant opportunities for further sophisticated nanostructural engineering to advance the SERS performance in the future.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3552-2
Perovskite light-emitting diodes (PeLEDs) are a promising display technology due to high color purity and solution processability, but their operational stability is compromised by environmental degradation. Encapsulation is essential for practical deployment. Here, we report that applying a commercial AB epoxy adhesive as a cover encapsulant induces a striking transparency transition in Cs0.3MA0.7PbBr3 perovskite films, from yellow to optically clear. The effect is attributed to the alkaline hardener (component B, pH 9–10), which engages in Lewis acid-base coordination with Pb2+ and reacts with Br−, as evidenced by Fourier-transform infrared spectroscopy (redshift of C–O–C stretch from 1035.56 to 1018.05 cm−1, Δν ≈ 17.5 cm−1) and X-ray photoelectron spectroscopy (Pb 4f shift of 0.25 eV, Br 3d5/2 shift of 0.45 eV). This chemical interaction refines perovskite grains to tens of nanometers, shifting light scattering from Mie to Rayleigh regime and enhancing transmittance. Encapsulated devices achieve a maximum luminance of 12,643 cd/m2, a low operational current density, and an increased breakdown voltage of 27 V. The work establishes a framework for selecting encapsulation materials that impart transparency, enabling applications in transparent displays, smart windows, and augmented reality.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3628-3
The solution aggregation structures of conjugated polymers are pivotal in determining their film morphology and optoelectronic properties, yet the relationship between solution aggregation and device performance remains elusive in organic photodiode (OPD) systems. Herein, we introduce the first examination of solution aggregation structures of all-polymer OPD blends, with a focus on how molecular entanglement modulates aggregation behavior and subsequent photodiode performance of low-cost poly(3-pentylthiophene). Using small-angle neutron scattering and freeze-dried imaging, we provide a comprehensive analysis of the solution-state aggregation behavior of poly(3-pentylthiophene) and its evolution in the blend, revealing profound impacts on film morphology and device performance. With finely optimized aggregation, the resulting all-polymer OPD achieves a record-high specific detectivity of ~4×10^13 Jones at zero bias, outperforming all bulk heterojunction (BHJ)-type self-powered OPDs reported to date. This device also demonstrates remarkable thermal stability, with negligible performance degradation after over 800 h of thermal annealing at 85 °C. Furthermore, the self-powered OPD exhibits excellent performance across a broad spectral range, enabling its application in both water quality monitoring and biosensing. This work offers new insights into the solution aggregation behavior of conjugated polymers in OPDs and highlights the importance of resolving solution aggregation in optimizing device function.
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.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.3724/2097-213X.2025.JFCT.0025
Endogenous alkali and alkaline earth metals (AAEMs) in biomass ash and pyrolysis temperature significantly influence the properties of pyrolysis polygeneration products. This study selected potassium (K+) and calcium (Ca2+) as representative AAEMs, added them at mass ratios of 2%, 5%, and 7% to corn stover via impregnation, and conducted fixed-bed pyrolysis at 400, 500, and 600 °C to investigate the yields and compositions of gas, liquid, and solid products. Results showed that increasing metal ion concentration significantly increased biochar yield, with Ca2+ at 7% achieving 24.96% biochar yield, while bio-oil yield generally decreased. Ca2+ strongly promoted H2 formation due to its Lewis acidity, reaching 32.49% in gas at 7% concentration, and facilitated furan enrichment to 65.88%. K+ at low concentrations favored phenolic formation, while high concentrations promoted ketones and intensified bio-oil cracking. Increasing temperature from 400 to 600 °C decreased biochar yield and increased gas yield, with high temperatures enhancing secondary cracking and reforming, significantly raising H2 and CH4 yields while suppressing oxygenates. At 600 °C, K+ catalysis increased acids to 39.41%, while Ca2+ maintained furans at 65.89%. This study demonstrates that adjusting metal ion concentration and temperature enables directional regulation of high-value bio-oil components and high-energy gases, providing a theoretical basis for optimized biomass pyrolysis utilization.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202604016
River and lake health assessment is an important technical means to evaluate the health status of rivers and lakes, scientifically analyze river and lake problems, and strengthen the implementation of the river and lake head system. Based on the Guidelines for River and Lake Health Assessment (Trial) and the characteristics and actual basin conditions of the lower Yellow River in Henan, this study determined the river health evaluation index system for this reach. Through collection of basic data and special investigations and monitoring, the health status in 2020 was evaluated from four criteria layers: 'basin', 'water', biology, and social service function. The overall score was 83.4, corresponding to a 'healthy' grade. The four criteria layer scores were 73.7, 95.0, 62.1, and 95.5, respectively. The evaluation identified main problems including low aquatic biodiversity, suboptimal shoreline conditions, and pressure on water supply security. Corresponding governance and protection measures were proposed, such as strengthening ecological protection, improving river regulation works, enhancing shoreline management, and upgrading water diversion facilities. The results provide scientific basis for river health management and the implementation of the river chief system in the lower Yellow River.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61100-6
Sodium-ion capacitors (SICs) are attractive for low-cost and safe energy storage, but their practical development is limited by sluggish Na+ storage kinetics and structural instability of anodes. Control of both bulk structure and surface chemistry can address these limitations. We report a heteroatom-rich porous carbon (HRPC) derived from spores via hydrothermal pretreatment, low-temperature carbonization, and acid-mediated functionalization. The optimized GLSHC-HNO3 anode exhibits hierarchical porosity and multi-element co-doping, enabling rapid ion/electron transport, improved electrolyte wettability, and abundant Na+ adsorption sites. Density functional theory calculations reveal distinct contributions of different heteroatom configurations to sodium adsorption. The HRPC anode delivers an ultrahigh reversible capacity of 446.1 mAh g−1 at 50 mA g−1, retains 237.3 mAh g−1 at 2 A g−1, and shows excellent cycling stability. A full SIC with a polyaniline-derived porous carbon cathode achieves an energy density of 114.4 Wh kg−1 at 290 W kg−1, 43.1 Wh kg−1 at 1450 W kg−1, and a maximum power density of 5800 W kg−1, with 84.3% capacity retention after 5000 cycles and nearly 100% Coulombic efficiency. This work establishes a scalable, sustainable route for converting biomass into high-value carbon anodes, providing a new pathway for high-performance sodium-ion energy storage.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202510013
To investigate the spatiotemporal distribution of nutrients and chlorophyll-a (Chl-a) in Dongping Lake, a coupled hydrodynamic-water quality-ecological model was developed using Delft3D. The model simulated total nitrogen (TN), nitrate nitrogen (NO3-N), ammonia nitrogen (NH4-N), total phosphorus (TP), soluble reactive phosphorus (SRP), and Chl-a. After validation, the model systematically analyzed the spatiotemporal patterns and influencing factors, revealing nitrogen and phosphorus transformation pathways. Results showed three temporal phases: relatively stable concentrations from January to April, significant fluctuations from May to August, and gradual stabilization from September to December, with peak timing varying among indicators. Spatially, concentrations were generally higher in the south and lower in the north, but NH4-N, TP, and Chl-a exhibited reverse patterns (higher in north) during certain periods. External inputs, primarily from the Dawen River, dominated the overall distribution, while water temperature, dissolved oxygen, and hydrodynamic conditions further modulated internal variability. Nitrogen and phosphorus showed distinct fates: nitrogen was primarily removed via denitrification and anammox, whereas phosphorus tended to transform into particulate forms and remained in the lake for extended periods. These findings provide scientific support for precise water quality management in Dongping Lake.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60618-9
Aromatic hydrocarbons, essential chemical feedstocks for fuels, synthetic fibers, and pharmaceuticals, are predominantly derived from petroleum refining. The catalytic conversion of lignin, a major lignocellulosic component, offers a renewable route to these chemicals. This review systematically examines the influence of pyrolysis methods, catalysts, and reaction conditions on the catalytic pyrolysis of lignin to aromatic hydrocarbons. Key parameters include catalyst acidity and pore structure, which govern selectivity and yield. Reaction temperature, catalyst-to-lignin ratio, and residence time critically affect product distribution. The review outlines catalytic mechanisms, such as deoxygenation, cracking, and aromatization, and highlights the role of zeolite catalysts, particularly HZSM-5, in enhancing monocyclic aromatic hydrocarbon yields. Metal modification (e.g., Fe, Ni, Ga) and pretreatment strategies (e.g., torrefaction) are discussed for improving efficiency. Challenges remain in catalyst deactivation due to coking and the complexity of lignin structure. Future research directions include developing robust catalysts, optimizing reactor designs, and integrating processes for industrial viability. This review provides theoretical and technological guidance for advancing lignin-to-aromatics conversion.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.3724/2097-213X.2025.JFCT.0031
The high-temperature behavior of biomass ash critically influences gasifier operational efficiency. This study investigates the differential high-temperature behaviors of corn straw ash (CSA) and wheat straw ash (WSA) using an intelligent ash fusion analyzer, high-temperature rotating viscometer, X-ray diffraction (XRD), SEM-EDS, and FactSage thermodynamic simulations. Both ashes contain high K2O (>30%) and exhibit flow temperatures below 1300 °C. Despite higher K2O and lower SiO2, CSA exhibits a higher flow temperature (1241 °C) than WSA, attributed to elevated CaO (10.39%) and MgO (7.33%) that promote formation of high-melting silicates (K2MgSiO4, K2Ca2Si2O7, CaSiO3). In contrast, WSA with lower CaO (4.92%) and MgO (2.82%) tends to form low-melting potassium silicates. At high temperatures, both slags are typical crystalline slags, with viscosity rising sharply below a critical temperature. For CSA, rapid nucleation and coarsening of silicate crystals (e.g., KAlSiO4 grain size increases from 20.5 nm at 1350 °C to 192.9 nm at 1050 °C) cause abrupt viscosity increase. For WSA, a high P2O5 content (10.05%) induces a 'chemical dilution effect', leading to persistent KAlSiO4 during cooling and elevated viscosity, especially at the final cooling stage. This study elucidates how ash chemical composition governs high-temperature phase equilibrium and non-equilibrium kinetics, thereby macroscopically affecting ash fusion and rheological behavior, providing a theoretical basis for deeper understanding of biomass ash high-temperature characteristics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4012-4
Stimuli-responsive fluorescent hydrogels, owing to their tunable optical properties and unique smart response characteristics, have significant potential in encryption applications and information security. However, most current systems are limited to single-stimulus responsiveness and lack the capability for programmable information erasure or multi-modal dynamic synergy. Hence, we propose a multi-stimuli-responsive phase-change hydrogel incorporating aggregation-induced emission hydrophobic carbon dots (AIE-HCDs) and polyethylene glycol (PEG)-cellulose network, demonstrating dynamic fluorescence chromism under various external triggers. The hydrogel exhibits solvent-exchange-triggered fluorescence color changes from blue to red, enabled by the concentration modulation of AIE-HCDs through the exchange between PEG and water. Additionally, the temperature-induced phase transition of PEG from crystalline to molten state modulates the aggregation and dispersion of AIE-HCDs, thereby enabling dynamic fluorescence color changes. The phase transition further confers excellent shape-memory behavior and adjustable mechanical properties, with the tensile modulus varying from 6.28 MPa in the molten state to 36.23 MPa in the crystalline state, while maintaining high transparency (~88% in the molten state). By utilizing micro-contact printing and the multi-stimulus response, an encryption platform enables information to be hidden, selectively read under sequential stimuli (thermal, UV, and solvent), and completely erased upon demand. This strategy demonstrates significant potential for advancing high-level information encryption and anti-counterfeiting technologies.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3977-8
Single quantum well (single-QW) two-dimensional (2D) perovskites are poised to revolutionize optoelectronic devices owing to their superior stability and optoelectronic properties. However, solution-processed 2D perovskites typically suffer from disordered multiple-QW structures, leading to inconsistent device performance. Here, we introduce a solvent-hydrolysis-driven method to control crystallization kinetics, yielding highly ordered single-QW 2D perovskite films. Dimethylamine (DMA), generated from the hydrolysis of N,N-dimethylformamide (DMF), serves as a critical mediator, preventing cluster aggregation and ensuring a uniform colloidal distribution. This approach circumvents the formation of a heterogeneous intermediate phase, thereby promoting the formation of a homogeneous (DMA,MA)PbI3 phase, which is essential for single-QW film development. The resultant photodetector exhibits outstanding performance, with a responsivity of 1153 mA/W and a detectivity of 6.98 × 10^12 Jones, along with excellent photostability under ambient conditions. These attributes render it ideal for photoelectric imaging sensors and large-scale integration. Our findings establish a scalable, solution-processed strategy for high-performance 2D perovskite materials, opening new avenues for advanced optoelectronic applications.
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/s40843-026-4181-6
Green hydrogen production via electrocatalytic water splitting is pivotal for sustainable energy, yet the high cost and scarcity of platinum (Pt) catalysts impede large-scale adoption. Ruthenium (Ru)-based materials emerge as promising alternatives, but their performance requires enhancement. Two-dimensional transition metal dichalcogenides (TMDs), particularly ReS2, offer intrinsic 1T' phase with good conductivity and stability, yet suffer from inert surfaces limiting water adsorption. Here, we report a heterostructure comprising Ru nanoclusters anchored on ReS2 nanosheets (Ru/ReS2) to modulate electronic structure via d-p coupling. This design enhances water dissociation kinetics and optimizes hydrogen adsorption free energy (ΔG_H*). The Ru/ReS2 catalyst exhibits superior hydrogen evolution reaction (HER) activity in acidic media, achieving an overpotential of 47 mV at 10 mA cm−2 and a Tafel slope of 38 mV dec−1, outperforming commercial Pt/C (overpotential 54 mV, Tafel slope 45 mV dec−1). Notably, it demonstrates exceptional stability, with negligible degradation after 10,000 cyclic voltammetry cycles, contrasting with Pt/C's 54 mV overpotential increase. Density functional theory calculations reveal that d-p coupling between Ru and ReS2 optimizes the electronic structure, facilitating water adsorption and dissociation. This work provides a rational strategy for designing efficient, durable, and cost-effective HER electrocatalysts for green hydrogen production.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4023-8
The escalating power consumption of 3D NAND flash memory, driven by the need for high pass voltages (V_pass) to read cells in vertically stacked strings, poses a critical challenge as layer counts approach 1000. Conventional charge-trap NAND requires V_pass of 5–10 V for quad-level cell (QLC) operation, while silicon-channel ferroelectric NAND suffers from limited memory windows due to low-k interlayers. Here, we highlight a breakthrough by Yoo et al. that introduces an oxide semiconductor (OS)-channel ferroelectric field-effect transistor (FeFET) with a gate stack comprising a zirconium-doped hafnium oxide (HZO) ferroelectric layer sandwiched between low-k (SiO2/SiNx) and high-k (Ta2O5) interlayers, and an indium gallium zinc oxide (IGZO) channel. The absence of hole carriers in IGZO suppresses the 'down' polarization state, enabling a near-zero threshold voltage (V_th) and reducing V_pass to as low as 1 V. The high-k Ta2O5 interlayer prevents oxygen diffusion, mitigating off-current degradation, while the low-k SiO2/SiNx interlayer enhances charge trapping, yielding a memory window exceeding 11 V for a 5-nm SiO2 layer. This enables 5-bit-per-cell (penta-level cell, PLC) operation, surpassing current QLC NAND. The combination of ultralow V_pass and wide memory window achieves both low power consumption and high storage density, positioning OS-channel FeFETs as a promising solution for next-generation memory systems.