A green edge-hosted zinc single-site heterogeneous catalyst for superior Fenton-like activity

Author:

Yu Xiaoyong12ORCID,Liu Hongzhi1,Huang Yixuan1,Li Changlin1,Kuang Liuning1,Zhong Jinyu1,Zhu Shuo1,Gou Yating1,Wang Yunhang1,Zhang Yinqing12ORCID,Shan Guoqiang12,Lv Zhengxin3,Zhang Shuo3,Zhu Lingyan12

Affiliation:

1. Ministry of Education Key Laboratory of Pollution Processes and Environmental Criteria, Carbon Neutrality Interdisciplinary Science Centre, Nankai University, Tianjin 300380, China

2. College of Environmental Science and Engineering, Nankai University, Tianjin 300380, China

3. Shanghai Synchrotron Radiation Facility, Shanghai Advanced Research Institute, Chinese Academy of Sciences, Shanghai 201204, China

Abstract

Developing green heterogeneous catalysts with excellent Fenton-like activity is critical for water remediation technologies. However, current catalysts often rely on toxic transitional metals, and their catalytic performance is far from satisfactory as alternatives of homogeneous Fenton-like catalysts. In this study, a green catalyst based on Zn single-atom was prepared in an ammonium atmosphere using ZIF−8 as a precursor. Multiple characterization analyses provided evidence that abundant intrinsic defects due to the edge sites were created, leading to the formation of a thermally stable edge-hosted Zn−N 4 single-atom catalyst (ZnN 4 −Edge). Density functional theory calculations revealed that the edge sites equipped the single-atom Zn with a super catalytic performance, which not only promoted decomposition of peroxide molecule (HSO 5 ) but also greatly lowered the activation barrier for OH generation. Consequently, the as-prepared ZnN 4 −Edge exhibited extremely high Fenton-like performance in oxidation and mineralization of phenol as a representative organic contaminant in a wide range of pH, realizing its quick detoxification. The atom-utilization efficiency of the ZnN 4 −Edge was ~10 4 higher than an equivalent amount of the control sample without edge sites (ZnN 4 ), and the turnover frequency was ~10 3 times of the typical benchmark of homogeneous catalyst (Co 2+ ). This study opens up a revolutionary way to rationally design and optimize heterogeneous catalysts to homogeneous catalytic performance for Fenton-like application.

Funder

Natural Science Foundation of Tianjin City

MOST | National Natural Science Foundation of China

111 Plan | Overseas Expertise Introduction Project for Discipline Innovation

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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