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◆ ACS Catalysis2026-02-11· Materials science

Gas-Molecular-Shearing Carbon Vacancy Defect Networks on Ni-Doped Carbon Fibers for High-Efficiency Low-Concentration CO <sub>2</sub> Enrichment and Electrocatalytic Reduction

Jinsheng Lai, Youpeng Xiong, Aerman Habadati, Meng Li, Mei Zhang, Tianwen Fang, Ke Yi, Yuzhu Ding, Xinghuan Liu, Xin Jia

原始摘要(英文原文)· Original abstract
Electrocatalytic systems for low-concentration CO 2 reduction still face significant challenges in the mass transport and electronic modulation of catalyst active sites. This study developed a gas-molecular shear strategy for constructing nickel single atoms (Ni SAs) and nanocluster (NC)-doped carbon nanofiber catalysts (Ni/TCNF S -10CA; CA = cyanuric acid) featuring carbon vacancy defect engineering and hierarchical porous channels, which created a microenvironment that enhances CO 2 adsorption and enrichment. Density functional theory (DFT) and experimental analysis revealed the effects of carbon vacancy defect-engineered Ni NCs on Ni SAs: (1) The introduction of carbon defects can regulate the local electronic structure and pore size, thereby achieving efficient enrichment and adsorption of CO 2 . (2) Carbon vacancy defects can optimize the key *COOH adsorption and reduce the desorption energy of *CO. The resulting catalyst achieved a near-unity Faradaic efficiency (FE) for CO (FE CO ≈100%) over a broad potential window. Notably, it maintained a high FE CO of 88.2% under a 20% CO 2 atmosphere. The catalyst exhibited durability exceeding 306 h (1102 cycles) in a Zn-CO 2 battery and over 80 h (288 cycles) in a Zn-CO 2 (20% CO 2 ) battery. This work proposes a high-activity carbon vacancy defect engineering strategy, delivering an innovative approach for efficient ECO 2 RR and the direct conversion of industrial flue gases.
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Gas-Molecular-Shearing Carbon Vacancy Defect Networks on Ni-Doped Carbon Fibers for High-Efficiency Low-Concentration CO <sub>2</sub> Enrichment and Electrocatalytic Reduction — 科研速览 Science Skim