SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4197-4
Deep-blue organic light-emitting diodes (OLEDs) remain the most challenging primary-color emitters due to stringent exciton energy requirements. We strategically designed two innovative deep-blue emitters, SCZ-4AnCN and STPA-4AnCN, via systematic functionalization of an anthracene core with arylamino-decorated spirofluorene donors and cyano-substituted phenyl acceptors. Comprehensive theoretical and experimental analyses demonstrate that these spirofluorene-anthracene hybrids adopt precisely engineered distorted configurations, effectively suppressing detrimental intermolecular π–π stacking in condensed phases. The sp3-hybridized bridgehead carbons in spirofluorene units play a pivotal role by simultaneously restricting π-conjugation extension and fine-tuning donor–acceptor interactions, thereby stabilizing the lowest excited singlet (S1) state with dominant local excitation (LE) character. This molecular engineering yields exceptional deep-blue emission with remarkable efficiency. Notably, the materials exhibit unique high-lying reverse intersystem crossing (hRISC) behavior, enabling efficient triplet harvesting. Optimized doped devices incorporating SCZ-4AnCN achieve outstanding performance, including a maximum external quantum efficiency (EQE_max) exceeding 10% and CIE coordinates (0.154, 0.052) approaching the BT.2020 blue standard. Nondoped devices maintain impressive performance with an EQE_max of 7.51% and superior operational stability, demonstrating less than 10% efficiency roll-off at 1000 cd m−2. This work validates anthracene-based molecular architectures for deep-blue electroluminescence and establishes a transformative design paradigm for next-generation OLED emitters.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3558-4
The development of advanced titanium alloys capable of operating above 600 °C remains a critical challenge for aerospace propulsion systems, where conventional Ti alloys suffer from insufficient high-temperature strength and microstructural instability. Here, we propose a computationally driven design strategy for titanium-based medium-entropy alloys (MEAs) that integrates thermodynamic phase prediction with mechanistically informed strength modeling, enabling systematic exploration of the Ti-Nb-Al-Cr quaternary system. The optimized Ti70Nb10Al15Cr5 MEA exhibits exceptional performance metrics: 18% room-temperature ductility (as-cast), a yield strength of 520.7 MPa at 650 °C (post-aging), and an ultralow density of 4.76 g/cm3 (45% lighter than Inconel 718). Microstructural characterization reveals a metastable single-phase BCC structure in the as-cast state, which transforms into a BCC/Ti3Al dual-phase system upon aging, with temperature-dependent precipitate morphology and phase stability. The alloy demonstrates superior high-temperature strength retention up to 900 °C (>80 MPa yield strength), outperforming commercial titanium alloys (e.g., Ti-1100, TG6) and bridging the performance gap between conventional Ti alloys and nickel-based superalloys. This work establishes a multi-criteria design paradigm for entropy-engineered alloys, offering a viable pathway to lightweight, high-temperature structural materials for next-generation aerospace applications.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60630-X
Chemical looping methane steam reforming (CL-MSR) enables sequential production of high-selectivity syngas and high-purity hydrogen via redox cycling, yet single iron-based oxygen carriers suffer from poor cycling stability, low reactivity, and sintering. This study modified Fe2O3/Al2O3 oxygen carriers with Cu, La, and Ce additives via dip-coating, and systematically characterized their physicochemical properties, reactivity, and hydrogen production performance. Results showed that spinel-phase CuFe2O4 exhibited higher reactivity than perovskite LaFeO3 and CeO2, promoting deeper reduction of Fe2O3. Fe58Cu2Al achieved an oxygen storage capacity of 6.5 mmol/g. During CH4 reaction, Fe58Cu2Al exhibited the highest oxygen loss of 12.1 g/100 g oxygen carrier, with syngas yield of 5.15 mmol/g—1.33 and 1.59 times that of Fe60Al. In hydrogen production, the 2% Cu-modified carrier yielded 5.13 mmol/g H2, 1.51 times that of pristine Fe60Al, with purity exceeding 98%. After ten cycles, H2 yield remained at 3.61 mmol/g, surpassing the single-cycle output of pristine Fe60Al (3.39 mmol/g), demonstrating superior dispersion and coking resistance. The study establishes Cu modification as an effective strategy to enhance reactivity and cyclic stability of iron-based oxygen carriers for CL-MSR hydrogen production.
The Chinese Journal of Process Engineering•2026•DOI: 10.12034/j.issn.1009-606X.225225
The non-Newtonian rheological properties of plastic melts are critical for regulating plastic processing, molding, and recycling processes, ensuring processing stability and product performance. However, rheological data for commonly used plastics and their blends remain incomplete. This study combined experimental testing and theoretical modeling to investigate the rheological behaviors of four pure plastics—polypropylene (PP), polyethylene (PE), polystyrene (PS), and acrylonitrile-butadiene-styrene copolymer (ABS)—and three binary blend systems: PE/ABS, PP/ABS, and PS/ABS. Rheological tests were conducted using a rheometer over a shear rate range of 0.1–100 s⁻¹ and temperatures from 180°C to 250°C. Results showed that the flow behavior index n was less than 1 for all samples, and apparent viscosity decreased significantly with increasing shear rate, indicating clear shear-thinning behavior. The consistency coefficient K followed the Arrhenius relationship with temperature, and melt viscosity decreased as temperature increased. The study quantitatively characterized the relationship between the mass fraction m (0.5 < m ≤ 1) of the main component in binary blends and melt viscosity. Based on experimental data, a component correction term was introduced into the traditional power-law model to construct a constitutive equation that simultaneously describes the effects of shear rate, temperature, and component fraction on melt viscosity. The average relative error between model predictions and experimental values was only 5.90%. These rheological data and the modified constitutive equation provide important theoretical support and data reference for optimizing process parameters in waste plastic recycling and injection molding.
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/s40843-025-3866-y
Precise measurement of flight parameters—including angle of attack (AOA), angle of sideslip (AOS), and airspeed—is critical for stabilized control of unmanned aerial vehicles (UAVs) in complex aerodynamic environments. Conventional rigid sensors fail to conform to curved leading edges, disrupting local flow and degrading aerodynamic performance, and are ill-suited for UAV miniaturization. Emerging flexible sensing technologies using hot-film, piezoresistive, or capacitive transduction offer potential solutions. This work presents a flexible pressure-velocity sensing patch developed by Professor Jiang's team at Beihang University. The patch integrates a capacitive differential pressure sensor array and a vector flow sensor, fabricated via a multi-layer polyimide bonding process. The capacitive differential pressure sensor features dual-layer chambers, achieving a resolution of 12 mPa within 0–1 Pa, superior to traditional single-layer designs. The vector flow sensor operates on the calorimetric principle, using a micro-heater and thermistor array to characterize flow velocity and direction. A novel pressure-velocity fusion (PVF) algorithm introduces spanwise velocity (Vz) to decouple AOA and AOS, reducing computational complexity compared to classic three-sensor algorithms. Computational fluid dynamics (CFD) simulations validated the algorithm's reliability under wind tunnel conditions. The sensing patch enables simultaneous measurement of multiple flight parameters with high precision and low computational cost, addressing the limitations of rigid sensors and advancing UAV aerodynamic sensing.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4006-4
Hydrogels, despite their potential in flexible electronics and wearable sensors, often suffer from inadequate mechanical robustness under sustained loading. This study aims to overcome this limitation by developing a novel nanocomposite hydrogel system through the integration of calcium-polyoxometalate sub-nanometer wires (Ca-POM SNWs) into a polyvinyl alcohol (PVA) matrix. Utilizing a H2O/ethylene glycol (EG) binary solvent, the hydrogel achieves uniform dispersion of Ca-POM SNWs, which enhances mechanical properties through dual reinforcement mechanisms: stress dissipation via polymer-mimetic flexibility and crystallinity improvement via hydrophobic ligand-induced chain alignment. The resulting PVA/Ca-POM hydrogel exhibits exceptional performance, including a 2.4-fold increase in fracture stress (0.85 MPa), 3.8-fold toughness enhancement (2.76 MJ m−3), and high ionic conductivity (3.6 S m−1). As a strain sensor, it achieves a gauge factor of 2.56 with rapid response, enabling precise detection of both large joint movements and subtle physiological vibrations. A prototype Morse code communication system further demonstrates its potential in assistive healthcare technologies, facilitating barrier-free, real-time communication between disabled patients and clinicians. This work highlights a breakthrough in inorganic-organic interface compatibility, offering a versatile platform for next-generation wearable technologies and extreme-environment applications. The innovative design principles and multifunctional performance underscore its significance in advancing soft material engineering.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608008
Medium-chain fatty acids (MCFAs), including caproate and caprylate, are promising biobased products with high energy density, hydrophobicity, and chemical conversion value, serving as key intermediates linking organic waste valorization to circular economy development. Compared to conventional anaerobic digestion for methane, chain elongation (CE) via reverse β-oxidation (RBO) converts short-chain intermediates (e.g., acetate, lactate, ethanol) into higher-value carboxylic acids, offering a novel route for resource recovery from sewage sludge, food waste, agricultural residues, livestock manure, and high-strength organic wastewater. However, natural mixed-culture CE systems face constraints from substrate composition fluctuations, electron donor competition, methanogenic carbon diversion, insufficient product selectivity, product toxicity, and high separation costs, hindering stable, efficient, and targeted MCFA production. This review systematically summarizes the metabolic mechanisms, artificial regulation strategies, and engineering bottlenecks in CE-based MCFA production, emphasizing directed recovery of carbon and electron resources from organic wastes. Future directions include stable continuous-flow operation, product separation and recovery, techno-economic assessment, and life cycle evaluation. The review aims to provide insights for high-value organic waste utilization and synergistic optimization of carbon and energy recovery.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4084-1
Alkali metal halides such as KCl are typical insulators with broad bandgaps, exhibiting poor luminescence. Ion doping can enhance their luminescence, but the mechanism of ultrafast diffusion and structural evolution remains unclear. Here, Sb3+ was doped into a KCl matrix via a room-temperature grinding route. Varying Sb3+ concentration induces a structural evolution from KCl:Sb3+ to 0D inorganic metal halides (IMHs) K3SbCl6. The resulting K3SbCl6 exhibits broad-spectrum yellow emission with near-unity photoluminescence quantum yield (PLQY). The luminescence mechanism is attributed to the 3P1→1S0 transition of Sb3+ ions. Furthermore, a room-temperature solid-liquid interface diffusion method enables ultrafast single-crystal growth of K3SbCl6 in only 20 seconds, with stable luminescence. The material demonstrates excellent temperature sensing performance in the 50–310 K range, achieving a maximum relative sensitivity of 9.99%/K. Additionally, K3SbCl6 shows application potential in information encryption, flexible composite fluorescent films, and white light-emitting diodes. This study provides new insights into ultrafast synthesis of high-performance luminescent materials.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3480-1
Electrochemical nitrate reduction to ammonia (NRA) offers a sustainable route for wastewater denitrification and decentralized ammonia synthesis, but its practical deployment is constrained by sluggish reaction kinetics and the competing hydrogen evolution reaction (HER). Monometallic Cu electrocatalysts, despite favorable nitrate adsorption and tunable electronic structure, exhibit weak H* adsorption, limiting the hydrogen radical-mediated pathway that suppresses HER at low overpotentials. Here, highly dispersed Cu/WO3 heterojunctions supported on carbon fiber were synthesized via carbothermal shock reduction, which reaches ultra-high temperatures within seconds and prevents active-site accumulation. The optimal Cu/WO3 heterojunction achieves an ammonia yield rate of 158.66 μmol h−1 cm−2 and a Faradaic efficiency of 98.27%. Electron paramagnetic resonance and density functional theory calculations reveal a synergistic mechanism: Cu sites preferentially adsorb NO3−, while adjacent WO3 sites accelerate water dissociation to generate hydrogen radicals (H*), which drive the continuous hydrogenation of nitrate to ammonia. This spatial separation of functions promotes the H*-mediated pathway and suppresses HER. The work establishes a heterojunction design strategy for non-precious-metal NRA electrocatalysts, enabling high-rate, high-selectivity ammonia production under mild conditions.