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Verified CAS / Academic Author6 Decoded Studies

Prof. HOU Rui

School of Materials Science and Engineering, North University of China, Taiyuan 030051, China; Shanxi Key Laboratory of Efficient Hydrogen Storage & Production Technology and Application, North University of China, Taiyuan 030051, China

Co-Affiliations:Taiyuan University of TechnologyCollege for Carbon Neutrality Future Technology, Sichuan University, Chengdu 610000, ChinaSchool of Chemistry and Chemical Engineering, Shanghai Jiao Tong University

Research Publications & English Decoded Briefs

Showing 6 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4417-x

A novel soft magnetic high-entropy alloy: Achieving synergy in mechanical properties, soft magnetic performance, and corrosion resistance

Balancing mechanical strength, corrosion resistance, and soft magnetic performance in structural-functional integrated materials remains a persistent metallurgical challenge. This study reports a face-centered cubic (FCC) Fe40Co35Ni15Al3Ta2Cr5 (at.%) high-entropy alloy (HEA) that achieves an unprecedented combination of these properties. The alloy exhibits a tensile strength of ~1200 MPa, total elongation of ~25%, saturation magnetization of 101.54 Am2·kg-1, and coercivity of 267.34 A·m-1. These values surpass most reported magnetic HEAs and conventional soft magnetic alloys. In a simulated 3.50 wt.% NaCl seawater environment, the alloy demonstrates a corrosion current density of 3.99 × 10-7 A·cm-2, comparable to 316L stainless steel. The synergy arises from nanoprecipitate engineering within the FCC matrix, which impedes dislocation motion while maintaining magnetic domain wall mobility and promoting a protective passive film. This work provides a design pathway for soft magnetic structural-functional materials suitable for corrosive marine environments, where simultaneous load-bearing and magnetic actuation are required.

New Carbon Materials2026DOI: 10.1016/S1872-5805(26)61071-2

Boron and Nitrogen Co-Doped Coal-Based Activated Carbon as Cathode Material for High-Performance Aqueous Zinc-Ion Hybrid Capacitors

Aqueous zinc-ion capacitors (ZICs) are promising energy storage systems due to their high specific capacity and superior reliability. Heteroatom-doped carbon materials have been shown to substantially increase the capacitance of ZICs, yet the underlying mechanisms remain poorly understood. In this work, coal-based activated carbon was functionalized with both boron (B) and nitrogen (N) to serve as the cathode material in ZICs. The optimized material, designated CAC-120, exhibits a high specific capacity of 371.4 mAh g−1 at 1 A g−1 and retains 74% of its initial capacity after 10,000 cycles. Electrochemical analysis and density functional theory (DFT) calculations reveal that pyridinic N plays a crucial role in enhancing Zn2+ storage, demonstrating superior electrochemical reversibility. Furthermore, an assembled aqueous ZIC using the CAC-120 cathode achieves a high reversible capacity of 90.8 mAh g−1 at 0.2 A g−1 and exceptional long-term stability over 17,000 cycles. This work provides valuable insight into the design of high-capacity and ultrafast pseudocapacitive carbon cathodes for ZICs, highlighting the synergistic effects of pore structure engineering and heteroatom doping.

New Carbon Materials2026DOI: 10.1016/S1872-5805(26)61106-7

Stabilization of Sulfur Species in Coal-Derived Hard Carbon via Micropore Confinement and Chemical Bonding for Enhanced Sodium Storage

Hard carbon anodes for sodium-ion batteries suffer from limited capacity, low initial Coulombic efficiency, and poor long-term cycling stability. To address these issues, we report a dual-stabilization strategy that combines micropore confinement and chemical bonding to control sulfur species in coal-derived hard carbon. Bituminous coal, with its naturally condensed aromatic framework, serves as the carbon precursor. A two-step thermal process first constructs a microporous carbon framework, followed by gas-phase sulfidation to introduce sulfur. The sulfur is confined within micropores and forms stable covalent C–S bonds with the carbon matrix, providing synergistic physical–chemical stabilization. This suppresses sulfur migration, prevents interfacial side reactions, and introduces additional redox-active sites. The optimized sample (HC-10) delivers a high reversible capacity of 450 mAh/g after 800 cycles at a current density of 1 A/g, with excellent rate capability and cycling stability. Mechanistic analysis reveals that the stabilized sulfur species reversibly participate in sodium-ion storage and improve interfacial kinetics. This work provides an effective strategy for stabilizing sulfur in coal-derived carbon materials and offers insights into the design of high-performance anodes for sodium-ion batteries.

Journal of Environmental Engineering Technology2026DOI: 10.13205/j.hjgc.202605020

Synergistic Effect of Hierarchical Pores and Amine Functionalization on CO2 Adsorption Performance by Distillers' Grains-Derived Biochar Spheres

To address the high CO2 emission proportion in the industrial sector, distillers' grain waste was converted into biochar for CO2 adsorption from flue gas. Raw biochar suffers from weak pore adsorption and poor selectivity at elevated temperatures. This study employed ash self-templating and particle self-assembly to create hierarchical pores and simultaneously load amine groups onto distillers' grains-derived biochar, yielding amine-functionalized hierarchical porous carbon spheres. The amine loading significantly increased, providing more CO2 adsorption sites, while retaining macroporosity (total pore volume 0.0030–0.0066 cm3/g after amine loading), which enhanced morphological stability and CO2 mass transfer. The optimal sample, 0.2PW-K-CNF-PEI, exhibited a CO2 adsorption capacity of 1.03 mmol/g at 100 °C, a CO2 diffusion coefficient of 0.0495 min−1, and a selective adsorption capacity of 44 mg/g at 80 °C. This work offers a solution for valorizing distillers' grain by-products and capturing CO2 from low-temperature flue gas.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3936-8

Cascade-Controlled Porous Composite Membranes: Pore-Supporting Synergy Enabling High-Flux Enantioseparation of Amino Acids and Pharmaceuticals

The precise separation of enantiomers is essential for developing effective chiral drugs, yet conventional membranes are constrained by the ubiquitous selectivity-permeability trade-off and low flux, limiting scalable production of single-enantiomer drugs. Herein, we present a cascade reaction strategy integrating Sonogashira-Hagihara coupling and Friedel-Crafts alkylation to fabricate porous conjugated microporous polymer membranes (CCMP-M P1–4/SiO2). This approach enhances specific surface area by 400-fold compared to the product from the Sonogashira-Hagihara coupling reaction alone, creating interconnected porous networks that facilitate mass transport. This hypothesis was confirmed by pore-size gradient experiments, which revealed a critical size-matching effect: matched molecular dimensions enable high-speed mass transfer with 97% enantioselectivity, while mismatch reduces selectivity to 9%, as visualized in a separation performance matrix across four chiral molecules. Precise chiral recognition is programmable via absolute configuration control of chiral monomers, with the mechanism of “preferential adsorption–interfacial enrichment–promoted diffusion” confirmed by static adsorption and density functional theory calculations. This strategy achieves breakthrough performance: Naproxen flux reaches 37 mmol m−2 h−1, surpassing literature values, and enables membrane-based separation of Raceanisodamine (89% selectivity of 6S, 2′S and 6R, 2′R-isomer after cascade enrichment) for the first time. This work provides a new paradigm for designing high-performance chiral separation membranes, facilitating scalable and sustainable production of single-enantiomer drugs.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4143-9

High-entropy modulation and surface engineering promising 4.8 V-tolerant practical Co-free ultrahigh-Ni cathodes

High-Ni (Ni ≥ 0.9) layered cathodes are being developed to endure high-voltage operations above 4.5 V to boost energy density. However, they face exacerbated chemo-mechanical and electrochemical degradation under high-voltage operation, primarily due to excessive lattice strain and phase distortion during cycling. Here, we engineer a high-Ni, Co-free cathode featuring a multicomponent complex doping-modulated bulk structure, coupled with surface modification via a multifunctional atomic layer deposition-coated LiAlO2 layer. Such a unique framework achieved by surface-to-bulk integrated modification can not only greatly prevent lattice stress-induced mechanical degradation but also effectively mitigate the accumulation of by-products due to surface side-reactions. Moreover, the LiAlO2 nanoshell with exceptional ion conductivity markedly enhances the sur-/interfacial Li-ion migration kinetics, thus rendering low electron/ion-diffusion resistance. The developed cathode breaks through existing voltage constraints without compromising on performance, achieving an exceptional balance between capacity and cycle stability during operation at 4.8 V. Notably, the pouch-type cells utilizing graphite and Li metal anodes demonstrate excellent cyclability under demanding conditions, even operating at high charging cut-off voltages of 4.5 and 4.6 V, respectively.