SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4258-0
High-entropy noble-metal-based catalysts (HENCs) have emerged as a frontier in electrocatalysis, leveraging the synergistic effects of high-entropy alloys and noble metals to achieve exceptional atomic utilization, tunable electronic structures, and vast compositional space. Their anisotropic architectures confer superior dissolution resistance, rapid electron/mass transfer, and abundant active sites. This review systematically categorizes advanced structural regulations—grain boundary engineering, single-atom alloys, intermetallic compounds, amorphous structures, and core@shell configurations—and evaluates their impact on electrocatalytic performance. By modulating surface electronic states and lattice strain, these strategies optimize reaction kinetics and durability. Notable applications include oxygen reduction (ORR), oxygen evolution (OER), hydrogen evolution (HER), and CO2 reduction (CO2RR). Despite progress, challenges persist in scalable synthesis, mechanistic understanding, and long-term stability. This review underscores the potential of HENCs to bridge laboratory innovation and industrial deployment, providing a roadmap for future catalyst design.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3520-1
Solution-processed metal halide perovskite light-emitting diodes (PeLEDs) have advanced rapidly due to high color purity, tunable emission, and low cost, with external quantum efficiencies (EQEs) surpassing 30%. However, high EQEs are typically achieved at low brightness, suffering severe efficiency roll-off at high current densities due to Auger recombination and Joule heating. Three-dimensional (3D) perovskites offer superior charge transport but suffer from low photoluminescent quantum yield (PLQY) and efficiency roll-off. The fundamental roll-off mechanism remains poorly understood. Recently, Yao and co-workers developed a molecule-in-lattice-enabled intragrain heterostructure in 3D perovskite to promote carrier confinement. Using device-level ultrafast spectroscopy, they identified hole leakage as the origin of efficiency roll-off in pure-red CsPbI3−xBrx PeLEDs. A strong bonding small molecule with multiple anchor groups was introduced to penetrate the lead halide octahedron framework, constructing wide bandgap barriers inside perovskite grains, reducing hole leakage without compromising carrier transport. This approach enabled ultrabright, highly efficient, and stable pure-red PeLEDs with extremely low efficiency roll-off. The work provides a new strategy for achieving high brightness and efficiency simultaneously, advancing PeLED technology toward practical applications in displays and lighting.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3663-6
Escalating global climate change has precipitated a dramatic surge in building cooling/heating energy demands, critically undermining urban sustainability. Although dynamic thermal management technologies show potential for reducing architectural carbon footprints, prevailing active regulation systems remain constrained by energy-intensive mode-switching mechanisms and unsustainable operational costs. Here, we develop a zebra-inspired radiative modulator (ZIRM) that achieves climate-customized building thermal management through spatially partitioned integration of radiative cooling (RC) and heating (RH) functional units. The material breakthrough resides in a hybrid thin-film architecture combining a cellulose acetate/Zeolitic imidazolate framework-L (ZIF-L) porous membrane (solar reflectance ~95%, thermal emissivity ~0.88) with an MXene/ZIF-67 derived carbon-based absorption layer (solar absorption ~93%, thermal emissivity ~0.37), resolving the opto-thermal coupling limitations inherent to conventional materials. Experimental verification demonstrates that programmable regulation of the RC/RH area ratio enables broad-range temperature differential control from −4.3 to 12.1 °C during daytime operation. Building energy simulations reveal ZIRM’s annual energy consumption of 1.45×10^10 GJ, corresponding to 9.9% and 2.7% reductions compared to pure RC and RH systems, respectively. The established “configuration-environment-performance” predictive model pioneers a paradigm-shifting solution for carbon-neutral architecture, synergizing material innovation with climate-customized engineering strategies.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3686-6
Fused silica (SiO2) exhibits exceptional thermal stability and dielectric properties, making it an attractive material for aerospace and military applications. However, its relatively poor mechanical performance has limited its widespread practical utilization. This study proposed an innovative approach to fabricate SiO2-hexagonal boron nitride (hBN) composite ceramics via spark plasma sintering (SPS), leveraging the high-temperature phase transformation of cubic boron nitride (cBN) to introduce randomly oriented hBN as a reinforcing phase within the SiO2 matrix. The randomly oriented hBN nanoplates allow cracks to propagate along stronger grain boundaries, rather than along weaker interlayers of hBN, significantly improving the overall strength and fracture toughness of the composite. The maximum flexural strength and fracture toughness achieved are 183.4 MPa and 2.06 MPa m1/2 respectively, which are 3.6 times and 4 times that of fused SiO2. Concurrently, the composites exhibit low dielectric constants (ε = 3.58–3.69) and dielectric losses (tan δ < 0.0087) at 1 MHz. This work successfully enhanced the mechanical performance of fused SiO2 while preserving its excellent dielectric characteristics, opening new possibilities for its potential applications in advanced structural and functional fields.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.3724/2097-213X.2026.JFCT.0001
The escalating global demand for carbon reduction has positioned chemical absorption using alkanolamine solvents as the predominant post-combustion CO2 capture technology, owing to its high absorption efficiency and process maturity. However, the regeneration of CO2-rich solvents is energy-intensive, with the desorption step accounting for 40.0%–60.0% of total energy consumption. Traditional amine-based methods suffer from high energy penalties, solvent degradation, and equipment corrosion, limiting scalability. Catalytic CO2 desorption, employing solid acid catalysts (SACs), has emerged to address these challenges by lowering the activation energy for CO2 release, enhancing reaction kinetics, and enabling efficient regeneration at lower temperatures (110–130 °C reduced). This review systematically examines research from the past five years on key catalyst materials, focusing on structure-activity relationships, synergistic mechanisms of Lewis acid, Brønsted acid, and basic sites, and their influence on desorption pathways. It highlights that SACs not only improve desorption dynamics but also facilitate catalyst recovery, avoiding adverse effects on absorption. The paper analyzes current scientific and technological challenges, including catalyst stability, selectivity, and scale-up, and provides an outlook on industrial application in low-cost carbon capture. Key findings indicate that catalysts such as metal-organic frameworks (MOFs), heteropolyacids, and waste-derived materials can reduce regeneration energy by up to 30%–40% while maintaining high desorption efficiency. The review underscores the potential of catalytic regeneration to significantly lower operational costs and enhance the viability of amine-based CO2 capture in industrial settings.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3823-4
The global demand for chlorine gas continues to rise, driven by its indispensable role in chemical synthesis, disinfection, and wastewater treatment. Electrocatalytic chlorine evolution from seawater presents a promising alternative to the energy-intensive chlor-alkali process, yet it is hampered by the competing oxygen evolution reaction and the sluggish kinetics of chlorine evolution on conventional catalysts. Here, we report a novel hollow porous CoNiSe2/NiSe2 heterostructure nanosheet array synthesized via ion exchange and calcination, which exhibits exceptional catalytic activity and selectivity for the chlorine evolution reaction in acidic seawater-like electrolytes. The unique hollow porous morphology provides a high specific surface area, facilitating mass transport and exposing abundant active sites. Crucially, the heterointerface between CoNiSe2 and NiSe2 promotes d-p orbital hybridization between Co/Ni 3d and Se 4p states, which lowers the reaction energy barrier for chlorine evolution. The catalyst achieves a low overpotential of 108 mV to reach a current density of 100 mA cm−2 in 4.0 M NaCl acidic medium, with excellent stability and Cl2 selectivity. This work demonstrates the potential of non-noble metal selenides as efficient and durable catalysts for chlorine production, offering a pathway toward more sustainable chlor-alkali technology.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3892-2
Single-atom co-catalysts on semiconductor substrates offer a cost-efficient route to enhance photocatalytic performance with minimal precious metal loading. However, precise tuning of local coordination environments and construction of efficient single-atom co-catalysts remain challenging for overall water splitting. Here, we employ an icing-assisted photochemical reduction strategy to anchor atomically dispersed Pt species as hydrogen evolution co-catalysts on Al3+-doped SrTiO3 (Pt SA-STO). The optimized Pt SA-STO exhibits remarkable activity, with hydrogen and oxygen evolution rates of 13.62 and 6.71 mmol h−1 g−1, respectively, and a turnover frequency (TOF) of 2114.5 h−1. We pioneer the use of nuclear magnetic resonance (NMR) spectroscopy to quantitatively track the temporal evolution of Pt4+ to Pt2+ under continuous irradiation during the icing-assisted photoreduction. Advanced characterizations and theoretical calculations confirm that single-atom Pt co-catalysts facilitate directional transfer and extraction of photogenerated charge carriers, effectively suppressing surface recombination. This work provides insights into designing novel single-atom co-catalysts by deepening understanding of electronic configurations and active sites in photocatalytic overall water splitting.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60672-X
Dry reforming of methane (DRM) converts CH4 and CO2 into syngas, offering a route to mitigate greenhouse gases. Ni-based catalysts suffer from sintering and carbon deposition at high temperatures. This work employs MgO-MgAl2O4 composite supports to regulate Ni loading and introduces Ce, La, and Zr as promoters to investigate their effects on DRM activity, structural stability, and surface oxygen species. Optimal Ni loading of 12.5% yields highest CH4 and CO2 conversions. Promoter introduction slightly suppresses low-temperature activity but substantially modifies support local structure and metal-support interface, improving NiO dispersion and increasing surface oxygen vacancies and active oxygen species (Oβ). These changes enhance CO2 adsorption-activation and suppress carbon deposition. After 20 h DRM, Ce-promoted catalyst shows smallest Ni particle growth (6.23→8.07 nm) and lowest carbon deposition, demonstrating superior stability and anti-coking capability. The study elucidates how Ce, La, and Zr enhance sintering and coking resistance via interfacial electronic modulation and improved oxygen storage/release, guiding rational design of stable Ni-based DRM catalysts.
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.
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/s40843-025-4007-x
Hydrogels, with their hydrophilicity, flexibility, and environmental friendliness, are highly desirable for moisture-electric generators (MEGs) that harness ubiquitous moisture to generate electrical energy. As the active material layer in MEGs, hydrogels play a crucial role in absorbing atmospheric moisture and converting chemical potential energy into electricity. However, the relatively low output current of the device and the instability of hydrogels pose challenges to the development of high-performance hydrogel-based MEGs. Herein, we introduce a straightforward, feasible, cost-effective, and versatile two-step solvent displacement strategy to overcome the barrier associated with the development of MEGs. Through tunable solvent interactions of glycerol and water, the moisture absorption capability and stability of the hydrogel can be improved, while promoting favorable ion migration. Such an effective processing route not only significantly boosts the output performances but also greatly improves the long-term durability of hydrogel-based MEGs. Notably, the current output and power density of the treated MEGs can increase by up to two orders of magnitude. The mechanisms behind the intriguing observation are investigated by various characterizations and theoretical calculations. This universal strategy holds promise to be extended to various hydrogel-based MEGs. Moreover, the MEGs can be used for energy harvesting, self-powered respiratory monitoring, and non-contact humidity detection. This work offers new opportunities for advancing green energy and self-powered technologies.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4081-y
The evolution of precision medicine has propelled multimodal imaging-guided phototheranostics to the forefront for precise tumor diagnosis and therapy. Low-temperature photothermal therapy (PTT) offers a promising approach for the treatment of melanoma due to its non-invasiveness and minimal damage to normal tissues. However, its efficacy is limited by cancer cell thermal tolerance. To address this, a new type of multifunctional energy disruptor (CAMeO-Q NPs) is developed featuring homologous targeting and mitochondria targeting, and synergistically enhancing low-temperature PTT in melanoma by reversing heat shock protein 90 (Hsp90)-mediated thermal tolerance and blocking mitochondrial adenosine triphosphate (ATP) biosynthesis. The multifunctional energy disruptor enables precise trimodal imaging (fluorescence imaging/FLI, photoacoustic imaging/PAI, and photothermal imaging/PTI) guidance for low-temperature PTT. Comprising a mitochondria-targeting photothermal agent and an Hsp90 inhibitor, CAMeO-Q NPs induce selective mitochondrial damage under 660 nm laser irradiation and downregulate cellular HSP expression by ATP inhibition and Hsp90 inhibitor. This multifunctional energy disruptor provides a novel strategy for enhancing multimodal imaging-guided low-temperature photothermal therapy through combined homologous targeting, mitochondria-targeting, and Hsp90 inhibition.