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FW
Verified CAS / Academic Author12 Decoded Studies

Prof. Fayang Wang

School of Materials Science and Engineering, Jiangsu University

Co-Affiliations:Harbin Institute of Technology, School of Chemistry and Chemical Engineering, MIIT Key Laboratory of Critical Materials Technology for New Energy Conversion and Storage, State Key Laboratory of Urban Water Resource and EnvironmentSchool of Materials Science and Engineering, Tsinghua UniversityKey Laboratory of Optoelectronic Technology & Systems, Chongqing University

Research Publications & English Decoded Briefs

Showing 12 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4505-9

Ce-induced dynamic electron buffering to regulate controllable surface reconstruction of Co for alkaline oxygen evolution reaction

Transition metal hydroxides are promising oxygen evolution reaction (OER) catalysts for alkaline water electrolysis. This study reports Ce-doped Co(OH)2 electrocatalysts synthesized via one-step electrodeposition, where the Ce3+/Ce4+ ratio is precisely controlled by deposition temperature. The optimized Ce-Co(OH)2 catalyst, obtained at 40°C, exhibits an overpotential of 236 mV at 10 mA cm-2 and maintains stability for 200 h. In an anion-exchange membrane water electrolyzer (AEMWE), the Ce-Co(OH)2 anode achieves a cell voltage of 2.04 V at 1 A cm-2 and operates for over 500 h at 500 mA cm-2. Mechanistic analysis reveals that Ce3+/Ce4+ dynamic electron buffering regulates surface reconstruction: during OER, electron transfer direction reverses (Ce → O → Co), with Ce donating electrons to Co sites to prevent over-oxidation and structural collapse. This work establishes a versatile strategy for balancing surface reconstruction and structural stability in Co-based OER catalysts, providing a foundation for designing high-performance, durable alkaline water oxidation electrocatalysts.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4202-3

Self-Photooxidation-Restructuring Enables NIR-II Absorption of Carbon Dots for Cancer Phototherapy

Carbon dots (CDs) with absorption in the second near-infrared window (NIR-II, 900-1700 nm) hold promise for tumor theranostics, yet existing synthesis methods often involve complex procedures, harsh conditions, or lack precise control. Here we report a 'self-photooxidation-restructuring' strategy that enables structural reorganization of the carbon core in CDs, achieving a significant redshift of absorption into the NIR-II region. Under ultraviolet (UV) light irradiation, the precursor (B-CDs, absorption in UV region) generates singlet oxygen, which self-oxidizes aldehyde groups and the carbon skeleton of B-CDs to stronger electron-withdrawing carboxyl groups and carbon radicals, respectively. These processes facilitate the formation of new C=C bonds between isolated aromatic domains, thereby transforming B-CDs into novel CDs (N-CDs) characterized by enhanced donor-acceptor interactions and a redshift in absorption toward the NIR-II window. Various experimental data, including high-resolution XPS, FTIR, NMR, EPR, have proved the proposed formation mechanism. The novel N-CDs afforded a high photothermal conversion efficiency of up to 71.33%, which enabled 1064 nm laser-activated photoacoustic imaging (PAI)-guided photothermal therapy (PTT) in tumors. This work opens a new avenue for the synthesis and modulation of CDs in the NIR-II region.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4232-1

A comprehensive review on double-redox reaction towards high-performance polyanionic sodium-ion batteries

Polyanionic cathode materials are widely considered as potential cathode materials for sodium-ion batteries due to their strong three-dimensional framework and intrinsic thermal safety. Nevertheless, the limitation of the specific capacity and energy density hindered their application, which can be ascribed to the common reliance of single-electron redox reaction of the transition metal. By realizing the reversible double redox reaction of vanadium-based and manganese-based polyanion cathodes, researchers have successfully opened up a new way to break through the long-term performance limitations. Recent studies disclose that vanadium and manganese-based polyanionic cathodes exhibit the possibility of realizing a reversible double-redox reaction, which opened up new avenues to overcome the capacity dilemma. However, many fundamental issues remain unclear, including insufficient structural stability at high operating voltages, irreversible structural evolution induced by sodium extraction, sluggish electronic and ionic transport kinetics, and Jahn–Teller distortion. Therefore, it is imperative to summarize recent work in order to clarify the pathway for future investigation. In this review, the key challenges associated with the activation of the double-redox reaction are outlined, followed by the realization and regulation of the double-redox reaction in polyanionic cathode materials. A systematic summary of recent studies is performed for both vanadium and manganese-based compounds, which could contribute to the fundamental understanding of the double-redox reaction mechanism. Combined with the modification strategy and future perspective, this review provides insights into the rational design of polyanionic cathodes with a reversible double-redox reaction. It also offers insights into the development of high-energy-density cathode materials for next-generation sodium-ion batteries.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3629-3

Surface Modification of Metal Nanostructures Toward Electrically Pumped Perovskite Microlasers

Electrically pumped lasers with reduced physical dimensions are critical for future optical information processing, storage, and photonic integrated circuits. However, electrical injection in perovskite lasers faces challenges including material instability, non-radiative losses, and Joule heating. Here, we demonstrate an ultralow-threshold perovskite microlaser decorated with gold nanoparticles (AuNPs), enabling simultaneous optical pumping and current injection at ambient temperature. The lasing threshold is reduced to 8.6 μJ/cm², approximately 44% lower than that of pristine devices (15.3 μJ/cm²). The AuNPs, with optimized size, enhance both lasing performance and electrical properties, achieving a current injection density of 2.98 kA/cm². AuNPs accelerate hot-carrier cooling, reducing non-radiative recombination and mitigating Joule heating. The threshold decreases progressively with increasing electrical assist fraction. Stability tests confirm excellent resistance to aging and humidity, with stable lasing output under co-excitation in ambient air. This work underscores the feasibility of electrically driven perovskite microlasers, offering a pathway toward electrically pumped microlaser diodes.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3919-0

From Bench to Buoy: Challenges in Seawater Uranium Extraction

Nuclear energy is critical for sustainable economic development and achieving carbon neutrality. With only about 6.14 million tons of terrestrial uranium, sufficient for ~70 years of global nuclear power plant operation, the recovery of uranium from seawater and spent fuel is essential for long-term nuclear fuel supply. The ocean contains approximately 4.5 billion tons of uranium, which could sustain nuclear power for ~2000 years if efficiently extracted. However, seawater uranium extraction faces significant challenges due to the extremely low uranium concentration (~3.3 ppb), high concentrations of competing ions, natural organic matter, and marine biofouling. This perspective reviews representative laboratory advances, including sulfonated covalent organic frameworks (S-COF) achieving a sorption capacity of 31.5 mg/(g·day) with high selectivity, amidoxime-based organic cages with a capacity of 11.97 mg/g over 30 days, and a micro-redox reactor strategy that continuously regenerates binding sites. Electrochemical methods have also shown promise for converting soluble U(VI) to insoluble U(IV) oxides. Despite these advances, the transition from laboratory powders to durable marine materials remains problematic. Key gaps include the need for antibacterial properties, mechanical stability under wave action, cost competitiveness with terrestrial mining, and environmental safety of nanomaterials. Artificial intelligence (AI) is proposed to accelerate the design of high-performance, stable materials. This perspective emphasizes the necessity for interdisciplinary research to bridge the gap between bench-scale innovations and practical ocean deployment.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3730-3

Green Separation Membranes for Water Sustainability: A Breakthrough in Biodegradable Nanofiltration Technology

Water scarcity, exacerbated by organic micropollutant contamination and climate change, necessitates energy-efficient, eco-friendly purification technologies. Membrane separation has emerged as a transformative solution, outperforming energy-intensive processes such as distillation. Traditional chemical separations, dominated by distillation, consume 10%–15% of global energy, whereas advanced membrane technologies can reduce energy use by up to 90%. However, membrane separation is hampered by reliance on toxic petrochemical feedstocks and persistent microplastic pollution from nonbiodegradable end-of-life membranes. Shao's group addresses both gaps with a sustainable nanofiltration membrane (SNFM) crafted entirely from low-hazard, renewable components. The substrate polylactic acid (PLA), a biodegradable polyester derived from corn starch, is processed via modified nonsolvent-induced phase separation (NIPS) to form a porous yet strong support. For the selective layer, toxic aromatic monomers are replaced with xylitol (a plant sugar alcohol) and dopamine (DA, a biogenic amine), and green solvents such as dimethyl sulfoxide are used to avoid volatile organic compound emissions. Compared with commercial alternatives, this design yields a membrane with exceptional dual functionality: it maintains high separation performance (928% greater permeance, 92% bisphenol A rejection, and 89% Na2SO4 rejection) and low fouling (protein adsorption ≤12 μg cm−2) over 30 days. A life cycle assessment reveals a 62% reduction in carbon footprint compared with petrochemical-based membranes, whereas soil biodegradation tests confirm 90% breakdown within 6 months, driven by Delftia and Tissierella microbes. By eliminating microplastic waste and toxic inputs, this SNFM bridges the divide between performance and environmental responsibility, offering a scalable blueprint for next-generation green membranes in water treatment and beyond.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025021602

Electroactive Bacteria Accelerate the Degradation of Gallic Acid by Nano Iron Minerals and Its Mechanism

Iron-based catalysts are widely used in water pollution treatment due to their high stability and redox capabilities. However, conventional single-component iron-based catalytic systems face challenges such as slow reaction kinetics and low efficiency in generating reactive oxygen species (ROS) during organic pollutant degradation. In this study, three electroactive bacteria (Bacillus megaterium, Lactococcus lactis, and Shewanella putrefaciens) were selected to interact with nano-Fe3O4 to construct bacterial/Fe3O4 hybrid materials, accelerating the degradation of gallic acid. The results showed that bacterial interaction with Fe3O4 facilitated rapid electron transfer, enhancing gallic acid degradation. The bacterial/Fe3O4 hybrid materials exhibited significantly higher gallic acid degradation rates compared to Fe3O4 alone. This improvement was mainly attributed to the ability of electroactive bacteria to promote the formation of oxygen vacancies (OVs) on the Fe3O4 surface, accelerating electron transfer and subsequently enhancing the generation of ROS, including hydroxyl radicals, superoxide radicals, and singlet oxygen. Correlation analysis demonstrated a significant positive relationship between OVs and ROS generation, with hydroxyl radicals showing the highest correlation with the gallic acid degradation rate constant (r = 0.98), indicating its dominant role in gallic acid degradation; the hydroxyl radicals quenching experiment also verified its dominant role. Additionally, due to the temperature sensitivity of bacteria, the degradation rate of gallic acid reached its peak in the temperature range of 30–40 °C. This study reveals the mechanism by which electroactive bacteria enhance the catalytic activity of Fe3O4, providing a new strategy for its application in advanced oxidation technology for water pollution treatment.

Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2025040102

Performance and Mechanism of Calcium Peroxide for Fluoride Removal and Site Energy Distribution

Calcium peroxide (CaO2) with a rich porous structure was synthesized via chemical precipitation for efficient fluoride removal from aqueous solutions. The adsorbent was characterized by SEM, BET, LPSA, and XRD, revealing a mesoporous material with a total pore volume of 0.51 cm3·g−1. Batch experiments investigated the effects of adsorbent dosage, initial fluoride concentration, reaction time, pH, and coexisting anions. Adsorption kinetics followed a fractal-like pseudo-first-order model, with intraparticle diffusion as the rate-limiting step. Equilibrium data were well described by the Sips isotherm, predicting a maximum adsorption capacity of 479.8 mg·g−1. Site energy distribution analysis indicated a normal distribution with an average energy of 13.36 kJ·mol−1. Mechanistic studies using FTIR and XPS revealed that fluoride removal proceeds via surface precipitation, ligand exchange, and electrostatic attraction. The high density of active sites contributes to the exceptional defluoridation performance, positioning CaO2 as a promising adsorbent for fluoride-contaminated water treatment.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4063-2

Improving Average Electron Population in Quantum-Dot Emissive Layer via Core-Shell ZnO@ZnMgO Nanoparticles for QLEDs with Efficiency Exceeding 30%

Quantum dot light-emitting diodes (QLEDs) are emerging as a leader in next-generation display technology. In principle, the efficiency of QLEDs is highly reliant on the radiative recombination rate of injected electrons and holes in the QD emissive layer. Within a solitary light-emitting cycle, a pre-negative-charged QD bursts into a fleeting sparkle upon encountering a hole, much like a lighted piston within a roaring engine. More pistons bring higher horsepower. The challenge of achieving highly efficient QLED lies in how to increase the number of pre-negatively charged QDs. To address these limitations, we developed a ZnO@ZnMgO core-shell nanoparticle (NP)-based electron transport layer (ETL). This design synergistically combines the high conductivity of ZnO core and the low defect density of the ZnMgO shell. Measured by electron-excited transient absorption, the average electron population (<N_e>) in the emissive layer for ZnO@ZnMgO and ZnMgO-based QLEDs was 0.61 and 0.33 at 4 V, respectively, which greatly increases the carrier recombination efficiency. As a result, green QLEDs achieve a peak EQE of 30.66%, maximum luminance of 1,615,039.85 cd/m2, and a low turn-on voltage of approximately 2 V. The T95 operational lifetime exceeded 29,000 h at 1,000 cd/m2. Currently, all parameters are at the top level within the QLED region.

Journal of Fuel Chemistry and Technology2026DOI: 10.1016/S1872-5813(26)60681-0

Research Progress on Hydrogen and Carbon Materials Production from Methane Pyrolysis

The escalation of global warming and climate change necessitates the development of clean energy carriers. Hydrogen, with a high combustion value of 120 MJ/kg and net-zero carbon emissions, is a promising alternative. Catalytic methane pyrolysis offers a route to produce high-purity hydrogen and functional carbon materials simultaneously. However, challenges persist in catalyst deactivation due to carbon deposition and the efficient separation and valorization of carbon byproducts. This review systematically examines recent progress in solid and molten-medium catalysts for methane pyrolysis. It highlights strategies to enhance catalyst stability, including precise control of active sites, alloying, support optimization, and tuning the carbon-catalyst interface. The introduction of molten media catalytic systems, which feature dynamically refreshed gas-liquid interfaces, can fundamentally mitigate deactivation and facilitate continuous carbon separation. The paper discusses reaction mechanisms, catalytic performance, and control of carbon morphology, along with strategies for efficient separation and purification of carbon products in molten media. High-value applications of the produced carbon materials are also explored. The review underscores the potential of methane pyrolysis as a low-carbon technology for hydrogen production, while identifying key research directions for industrial scalability.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4074-6

AI for Electrocatalytic Energy Conversion: From Atoms to Industry

Achieving carbon neutralization relies heavily on green hydrogen and electrochemical carbon-nitrogen cycles. However, the complexity of these systems and the cost of traditional Edisonian trial-and-error methods hinder rapid progress. Artificial intelligence (AI) has emerged as a transformative tool, enabling high-throughput data processing and dynamic adaptation. This review surveys the landscape of AI-driven electrochemistry, bridging the gap from atomic-scale design to industrial-scale implementation. Specifically, we focus on three areas: atomic structure-function decoding, fully automated “self-driving” laboratories, and macro-scale simulations for device durability. Furthermore, we elucidate the critical challenges in integrating AI with materials science. By mapping current trends and future directions, this work aims to unlock the full transformative potential of AI in next-generation energy storage and conversion.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4334-9

Advances in Piezoelectric Materials with Diverse Crystal Structures: From Design to Applications

Piezoelectric materials underpin modern electromechanical energy conversion, serving as critical components in sensors, actuators, and energy harvesters. Their performance is intrinsically governed by the piezoelectric coefficient, yet optimizing this property remains challenging due to the profound influence of diverse microscopic structures. This review systematically examines three fundamental crystalline architectures—perovskite, wurtzite, and fluorite—and critically analyzes performance optimization strategies tailored to each structure. We explore five principal modification approaches: defect engineering, elemental doping, heterostructure film fabrication, composite film design, and buffer layer incorporation, with emphasis on the underlying physical mechanisms that drive property enhancements. By providing a cross-structural comparison, this review establishes clear structure–property relationships, offering a foundational guide for material selection and design. Furthermore, we highlight the implications of these advanced materials for next-generation applications in energy harvesting and smart devices. Finally, we present a forward-looking roadmap, outlining emerging research directions and addressing key technical challenges to guide the development of next-generation high-performance piezoelectric materials.