SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4384-9
Nanovesicle-hybridized hydrogels constitute a class of bioactive materials that integrate the structural stability of polymer networks with the intrinsic biological functions of nanoscale vesicles. Conventional hydrogels suffer from swelling-induced mechanical degradation, uncontrollable cargo release, and an inability to integrate multiple bioactivities. Hybridization with nanovesicles provides a robust solution to these limitations. This review systematically delineates the evolution of construction strategies, transitioning from simple physical entrapment to advanced chemical crosslinking involving noncovalent supramolecular interactions and covalent conjugation. We elucidate how these integration methods fundamentally enhance mechanical strength, enable spatiotemporally controlled release of vesicles and their cargos, and endow composite systems with multifaceted bioactivities. The diverse biomedical applications of these hybridized platforms in drug delivery, tissue engineering, and disease therapy are thoroughly discussed. Current technical hurdles in clinical translation and promising future directions are identified, providing a roadmap for the next generation of intelligent biomimetic materials. The review emphasizes that the shift from physical doping to chemical crosslinking represents a paradigm change, yielding composites with superior mechanical resilience and programmable release kinetics. By critically assessing the trade-offs between crosslinking density, vesicle integrity, and payload retention, this work offers a framework for designing hybrid systems with tailored properties. Key challenges include scalable manufacturing, long-term stability, and regulatory hurdles. The analysis underscores that clinical translation demands standardized protocols for vesicle isolation, crosslinking efficiency, and sterility assurance. This review serves as a benchmark for researchers and engineers aiming to bridge the gap between laboratory-scale fabrication and industrial production of nanovesicle-hybridized hydrogels.
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.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60581-0
Lignin-derived oxygenated aromatics, particularly phenols and aromatic ethers, are promising feedstocks for synthesizing high-density, high-heat-sink aviation fuels via alkylation-hydrogenation processes. This study systematically evaluates the catalytic performance of various zeolites (Hβ, HZSM-5, MCM-41, and HUSY) in the alkylation of phenol with cyclohexanol. Characterization demonstrates that HUSY zeolite exhibits superior catalytic activity due to its favorable pore architecture and well-balanced acid site distribution, which synergistically facilitate molecular diffusion and catalytic transformations. To further enhance catalytic properties, HUSY was modified with citric acid at various concentrations and compared with NaOH and oxalic acid treatments. Results reveal that citric acid treatment preserves crystallinity while modulating acidity and pore structure. All modified zeolites enhance phenol alkylation activity. Notably, HUSY-0.5M, exhibiting the highest medium-strong acid to total acid ratio, achieves superior performance: 80.4% phenol conversion and 99.6% selectivity for alkylation products. The catalyst also shows high activity for various lignin-derived compounds (p-cresol, anisole, guaiacol), demonstrating broad applicability. This work provides a new strategy for valorizing lignin-derived phenols into high-value fuel precursors through alkylation.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3840-3
Tactile sensing for dexterous robotic hands is essential for achieving human-like precision in manipulation. However, current tactile sensors face challenges such as insufficient durability, limited coverage, and poor conformability to curved, jointed surfaces. This study presents a stretchable distributed tactile sensor array designed for dexterous robotic hands. The array comprises 18 sensing units distributed across the hand, incorporating quasi-homogeneous functional layers interconnected by crosslinked interpenetrating networks, and composite electrodes combining high conductivity with stretchability. This design yields a thin, soft, transparent, and stretchable sensor array that integrates seamlessly with a commercial dexterous hand. The sensor array exhibits high interlayer tensile strength, high sensitivity, low hysteresis, and excellent long-term reliability over 10,000 loading cycles. Experimental results demonstrate accurate detection of tactile force across the entire robotic hand during object grasping. Using convolutional neural network algorithms, the sensor array identifies different object types with 90.1% accuracy, with results displayed in real time on a digital twin interface. The proposed sensor array holds significant potential for embodied intelligence and robotics in adaptive grasping, safe manipulation, and remote teleoperation.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202512042
Chlorinated volatile organic compounds (CVOCs) such as dichloromethane (DCM), dichloroethane (DCE), trichloroethylene (TCE), and chlorobenzene (CB) are hazardous air pollutants requiring efficient removal. This study modified a commercial activated carbon (AC) via high-temperature treatment and phenol cracking carbon deposition to tailor its pore structure for enhanced adsorption of small-molecule CVOCs. The modified material (AC-M) exhibited a significant increase in ultramicropore volume (<0.8 nm), leading to a 24.2% increase in DCM adsorption capacity under dry conditions and superior water vapor resistance. Surface oxygen-containing functional groups decreased, enhancing hydrophobicity and mitigating water cluster formation. Adsorption kinetics analysis revealed that AC-M had a 39% higher total adsorption rate constant for DCM and a 22% reduction in mass transfer zone height, indicating faster adsorption. However, for larger CVOCs (DCE, TCE, CB), adsorption capacities slightly decreased due to reduced specific surface area, suggesting their adsorption relies more on micropores of matching size. This work provides a theoretical basis for designing efficient adsorbents for small-molecule CVOCs control.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4018-6
The pursuit of advanced wear-resistant materials for cryogenic applications is often hindered by a fundamental trade-off between enhancing strength and damage tolerance. CoCrNi-based medium-entropy alloys (MEAs), while excellent in cryogenic toughness, suffer from this very limitation. Although second-phase reinforcement boosts strength, the strain incompatibility between phases inevitably triggers cracking, which is severely exacerbated at low temperatures. This work introduces a novel microstructural design strategy based on regulated partial recrystallization to overcome this long-standing challenge. By tailoring the thermomechanical processing of a (CoCrNi)90Mo10 MEA, we engineered a unique architecture where a fully recrystallized FCC phase is homogeneously embedded within a continuous skeleton of a hard, non-recrystallized σ phase. The alloy with this optimized microstructure achieved a remarkably low wear rate at 113 K that is less than half of its as-cast and fully recrystallized counterparts. The experimental and modeling results indicate the underlying synergy: the σ skeleton provides robust structural support and distributes stress deeply, while the recrystallized FCC phase, with its high density of grain boundaries and annealing twins, acts as a compliant strain-accommodating medium, effectively suppressing interfacial cracking. This combined 'skeleton effect' and 'recrystallization effect' not only delivers exceptional cryogenic wear resistance but also offers a practical strategy for designing high-performance, crack-resistant dual-phase composites for extreme environments.