Synergistic Coordination in Cu Single‐Atom Catalysts Enhances High‐Valent Copper‐Oxo Species for Efficient PMS Activation

Author:

Shen Yi12ORCID,Pan Yongliang3,Zhu Chao3,Zhang Haizhong3,Wang Jun4,Liu Renlan5,Fang Qile6,Song Shuang3,Chen Baoliang7

Affiliation:

1. Key LaboraStory of Microbial Technology for Industrial Pollution Control of Zhejiang Province College of Environment Zhejiang University of Technology Hangzhou 310032 P. R. China

2. Shaoxing Research Institute Zhejing University of Technology Shaoxing 312000 P. R. China

3. Key Laboratory of Microbial Technology for Industrial Pollution Control of Zhejiang Province College of Environment Zhejiang University of Technology Hangzhou 310032 P. R. China

4. Key Laboratory for Green Chemical Technology of State Education Ministry School of Chemical Engineering & Technology Tianjin University Tianjin 300072 P. R. China

5. College of Life and Environmental Science Wenzhou University Wenzhou 325035 P. R. China

6. Advanced Institute of Natural Sciences Beijing Normal University at Zhuhai Zhuhai 519087 P. R. China

7. Department of Environmental Science Zhejiang University Hangzhou 310058 P. R. China

Abstract

AbstractIn the domain of heterogeneous catalytic activation of peroxymonosulfate (PMS), high‐valent metal‐oxo (HVMO) species are widely recognized as potent oxidants for the abatement of organic pollutants. However, the generation selectivity and efficiency of HVMO are often constrained by stringent requirements for catalyst adsorption sites and electron transfer efficiency. In this study, a single‐atom catalyst, CuSA/CNP&S, is synthesized featuring multiple types (planar/axial) of heteroatom coordination via an H‐bond‐assisted self‐assembly strategy. It is confirmed that CuN3 active centers with axial S coordination are uniformly distributed in a carbon matrix modified by planar P atoms. CuSA/CNP&S activated PMS to selectively generate Cu(III)═OH species as the primary reactive oxygen species (ROS). The pseudo‐first‐order kinetic rate for bisphenol A degradation reached 1.51 min−1, a 17.57‐fold increase compared to the unmodified CuSA/CN catalyst. Additionally, the CuSA/CNP&S catalyst demonstrates high efficiency and durability in removing contaminants from various aqueous matrices. Theoretical calculations and experimental results indicate that the intrinsic electric field generated by distal planar P atoms enhances electron transfer efficiency within the carbon matrix. Meanwhile, axial S coordination elevates the d‐band center and tunes the eg* band broadening of Cu, thereby enhancing the adsorption selectivity for the terminal oxygen of PMS. This multitype coordination synergistically mitigates the issues of low selectivity and yield of HVMO species.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Provincial Universities of Zhejiang

Mission on Nano Science and Technology

Publisher

Wiley

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