SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4490-y
The development of efficient enzyme mimics for CO2 hydration remains a critical challenge for industrial carbon capture. This study reports a bioinspired three-dimensional Zn-coordinated organic framework (Zn-SOF) synthesized via solvothermal assembly of a salen-based ligand with zinc ions. The resulting material exhibits a carbonic anhydrase-like active site with a Zn-N2O2 coordination environment, as confirmed by X-ray absorption spectroscopy. The Zn-SOF demonstrates a CO2 hydration rate of 3.2 × 10^-3 s^-1 per active site, representing a 12-fold enhancement over the homogeneous Zn-salen complex and approaching 8% of native carbonic anhydrase II activity. The catalyst maintains structural integrity over 10 consecutive cycles with <5% activity loss and operates optimally at 25–40 °C and pH 7.4–9.0. Kinetic analysis reveals a Michaelis-Menten constant (Km) of 28 mM for CO2 and a turnover number (kcat) of 4.1 s^-1, outperforming benchmark Zn-based mimics. The framework's hierarchical porosity (BET surface area: 620 m2 g^-1) facilitates substrate diffusion, while the hydrophobic pore environment enhances CO2 affinity. This work establishes a design paradigm for robust, recyclable enzyme mimics that bridge the gap between homogeneous catalysts and natural enzymes, offering a scalable route for post-combustion CO2 capture.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4443-5
The accelerating pace of urbanization and rising global temperatures have transformed reliable cooling from a luxury into a fundamental necessity for human health and economic activity. With urban populations projected to reach 66% of the global total by 2050, the energy demand for air conditioning is expected to increase by 750%. Conventional vapor-compression cooling is highly energy-intensive, accounting for approximately 17% of global electricity consumption while contributing to carbon emissions, refrigerant-related environmental concerns, and urban heat accumulation. Passive radiative cooling has emerged as a promising alternative because it dissipates heat to outer space through the atmospheric window (8–13 μm) without electricity or moving parts, offering an energy-efficient and environmentally sustainable cooling strategy. Despite its promise, effective daytime radiative cooling requires maximizing solar reflectance to minimize heat gain from solar absorption. Consequently, most radiative cooling materials appear white or silver. In recent years, researchers have proposed several strategies to overcome this aesthetic limitation. The most straightforward approach is to incorporate dyes or fluorescent pigments. Both mechanisms inevitably rely on optical absorption, resulting in parasitic heat generation that compromises cooling performance. In contrast, structural colors arise from wavelength-selective light interference or scattering by micro- or nanostructures with feature sizes comparable to the wavelength of visible light, enabling vivid coloration with minimal intrinsic absorption. Representative mechanisms include thin-film interference, diffraction gratings, and photonic crystals. Nevertheless, existing structurally colored radiative cooling materials usually require multi-step fabrication processes and specialized instruments, making large-scale production costly and time-consuming. Recently, Liu et al. reported a bilayer, colored ethyl cellulose (BCEC) coating produced in a single casting step, which significantly simplifies the fabrication process and presents a viable strategy for the practical deployment of this technology. The fabrication of BCEC involves the drying of an ethyl cellulose (EC)/N,N-dimethylformamide (DMF) solution in a water vapor environment. This induces non-solvent-induced phase separation (NIPS), driven by interactions between solute and solvent molecules. The bilayer structure forms spontaneously in a single step during the drying process: a relatively dense top surface is generated first as the DMF evaporates, after which water vapor diffuses slowly across this skin layer, initiating the NIPS process and producing the porous bottom layer. The dense top layer has a thickness of several hundred nanometers—an ideal scale for generating colors through thin-film interference. More importantly, this thickness can be conveniently and precisely tuned by adjusting the concentration of the precursor solution, making it possible to create various structural colors, including blue, yellow, red, pink, and green. In addition to thickness-dependent color tuning, the BCEC coating also exhibits angle-dependent coloration (iridescence), an intrinsic characteristic of thin-film interference, whereby the reflected peak wavelength shifts with the viewing or illumination angle. The highly porous bottom layer is responsible for the high solar reflectance, resulting from the strong scattering of light by the abundant micro- and nano-pores. The solar reflectance varies slightly with the thickness of the BCEC film; the thickest film (BCEC-5, green film) exhibits the highest solar reflectance of 0.97. Simultaneously, the intrinsic absorption derived from molecular bond vibrations, especially the C–O bond, contributes to the high the
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3660-5
High-sensitivity piezoelectric ceramics with high piezoelectric constants (d33) are crucial for miniaturized, low-power, and high-efficiency transducers. However, conventional performance enhancement relies on intrinsic parameter modulation, which is limited and blind. This study introduces a performance-driven metamaterials creation model to develop structure-function-integrated piezoelectric materials. We systematically investigated the effects of metastructure design on d33 across two-dimensional straight rod (SR) structures, three-dimensional dot-matrix (Octa) structures, complex triply periodic minimal surface (TPMS) structures, and hybrid Octa&SR structures. The results demonstrate that metastructures combining high polarization charge conversion efficiency with low compression modulus (stiffness) effectively enhance d33. The SR structure exhibited optimal polarization charge conversion, the Fks-Shellular (FksS) structure within TPMS showed low stiffness, and the Octa&SR structure combined both properties. Notably, all three structures displayed exceptional piezoelectric performance. Specifically, the FksS structure achieved a substantial d33 of 194 pC/N, a 24% enhancement over conventional solid BaTiO3, while maintaining isotropic and stress-insensitive properties. This work elucidates the mechanism for designing piezoelectric metastructures, offering a novel pathway for developing high-performance, high-failure-strength piezoelectric materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3539-5
MXene-based layered films are promising for electromagnetic interference (EMI) shielding, yet achieving highly ordered structures in scalable production remains challenging. Here, we report a facile centrifugal casting method for fabricating MXene/polyvinyl alcohol (MXene/PVA) films with highly oriented and compact layered structures. During centrifugal casting, the viscous fluid experiences strong shear and centrifugal forces along tangential and normal directions, respectively, inducing compact and oriented arrangement of MXene nanosheets. Consequently, the Herman's orientation factor increases from 0.681 to 0.794 as rotation rate rises from 0 to 4000 r/min. Accordingly, tensile strength and toughness improve from 55.2 to 191.1 MPa and from ~0.8 to 2.5 MJ/m³, respectively. The highly oriented and compact layered structure with ultrathin thickness (~8 μm) enables a high absolute electromagnetic shielding effectiveness (SSE/t) of 21029 dB cm²/g. Moreover, increased orientation reduces infrared emissivity to 0.248, endowing the film with excellent thermal camouflage capability. This work presents an effective strategy for constructing high-performance MXene-based layered films.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3605-0
Nickel oxide (NiOx) is widely used as a hole transport material in inverted perovskite solar cells (PSCs). However, its practical application is limited by low intrinsic conductivity and insufficient hole extraction ability, leading to significant interfacial defects that reduce device efficiency and stability. To overcome these issues, two isomeric small organic molecules, 2,6-NOT and 1,5-NOT, were developed and introduced to modify NiOx. These isomers share the same structure but differ in the substitution positions of functional groups, resulting in distinct molecular planarity. Experimental results demonstrate that 1,5-NOT, featuring extended conjugation and enhanced planarity, more effectively enhances the hole extraction/transport capabilities and conductivity of NiOx compared to 2,6-NOT. The NiOx/1,5-NOT-based device achieves a remarkable power conversion efficiency (PCE) of 24.20%, along with excellent long-term stability, surpassing the NiOx control device (18.12%) and the 2,6-NOT-based device (21.87%). These findings indicate that modifying NiOx with small organic molecules significantly improves charge transport performance, and increasing molecular planarity is particularly beneficial for enhancing hole transport and reducing defect density, thereby increasing both efficiency and stability. This work provides a new strategy for NiOx modification via small organic molecules, offering a promising route to high-performance inverted PSCs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3898-7
Platinum (Pt) is the benchmark catalyst for the hydrogen evolution reaction (HER) and hydrogen oxidation reaction (HOR) in acidic electrolytes, but its performance in alkaline media is limited by excessively strong hydrogen binding energy (HBE). Here, we report oxygen-modified ultrasmall RuCu nanocrystals (RuCu/C-200) as an efficient catalyst for both alkaline HER and HOR. The RuCu/C-200 catalyst exhibits excellent HER activity with an overpotential of 9 mV at 10 mA cm−2 and a Tafel slope of 19.7 mV dec−1. For HOR, it achieves a 4.2-fold higher exchange current density than the unannealed sample. Mechanistic studies reveal that the optimized HBE, hydroxyl binding energy (OHBE), and strongly hydrogen-bonded interfacial water, induced by oxygen modification, are the intrinsic determinants of the improved catalytic activity. This work underscores the potential of combining nanoscale structural design with oxygen modification to develop high-performance Ru-based electrocatalysts for both alkaline HER and HOR.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4124-x
Aerogel fibers, featuring distinct porous architecture and fiber flexibility, have emerged as leading materials for personal thermal protection; however, complex drying processes and singular thermal insulation mechanisms limit their use in complex environments. Here, aramid nanofiber/carbon nanotube (ANF/CNT) aerogel fibers integrating passive thermal insulation and active solar heating were fabricated via wet-spinning and ambient-pressure drying (APD). The incorporation of CNT and Ca2+ generates abundant physical and chemical crosslinking points, strengthening the nanofiber network skeleton and reducing structural collapse during APD to only 8.9% shrinkage. The resulting ANF/CNT aerogel textiles exhibit low thermal conductivity of 33.8–40.4 mW/(m K) and thermal insulation capability from −196 to 400 °C. The photothermal effect of CNT enables active solar heating, effectively supplementing passive insulation and allowing survival in extremely cold environments. In real tests, the synergistic effect improved skin temperature by up to 5.9 °C, significantly higher than 1.6 °C from passive insulation alone. These ANF/CNT aerogel fibers combine flexibility, mechanical strength, and flame retardancy, demonstrating promising potential for smart, controllable personal thermal management applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4100-9
Shape memory droplet manipulation platforms have attracted significant attention due to their programmable droplet control capabilities. Current research primarily focuses on superhydrophobic surfaces and slippery lubricant-infused porous surfaces (SLIPS); however, these approaches suffer from vulnerable surface micro/nanostructures and loss of lubricant oils. Here, we report a shape memory quasi-liquid polydimethylsiloxane (PDMS) brush surface that overcomes these limitations. The surface is fabricated by introducing a SiO2 layer as a 'bridge' on a shape memory epoxy substrate, providing abundant functional groups for grafting PDMS brushes. By precisely controlling the SiO2 layer thickness and grafting conditions, the surface exhibits good shape memory properties and low adhesion to diverse liquids with varying surface tensions. Reversible anisotropic/isotropic droplet sliding control for both water and organic droplets is demonstrated through dynamic introduction/removal of groove structures, proving excellent droplet manipulation based on the combination of shape memory and low adhesion of PDMS brushes. Furthermore, the material can be applied as a functional coating on diverse substrates to impart anti-fouling and self-cleaning properties. This work introduces a nanoscale SiO2 layer as a 'bridge', offering a strategy to graft PDMS brushes onto polymer surfaces. Given the advantages of quasi-liquid PDMS brushes and programmable controllability of shape memory polymers, this work provides fresh ideas for developing droplet manipulation platforms.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4162-0
The urea oxidation reaction (UOR) offers a low-energy pathway for hydrogen production via water electrolysis, but Ni-based catalysts suffer from Ni self-oxidation reaction (NSOR) that wastes energy and poisons active sites via strong CO2 adsorption. Here, we design MoN/Ni heterostructures to optimize the electronic structure of Ni sites, suppressing NSOR. X-ray photoelectron spectroscopy and X-ray absorption spectroscopy confirm the formation of electron-rich Mo and electron-deficient Ni active pairs. In-situ spectroscopy, electrochemical tests, and density functional theory calculations reveal that electron-rich Mo sites enhance urea adsorption, while electron-deficient Ni sites prevent NSOR, facilitating urea activation, intermediate conversion, and CO2 desorption. The synergistic effect yields a current density of 100 mA cm−2 at only 1.39 V vs. RHE in 1 M KOH + 0.33 M urea, outperforming many NiOOH-based catalysts. This work introduces a novel high-performance catalyst with electron-rich/electron-deficient active pairs for efficient UOR.