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author:

Yan, J. (Yan, J..) [1] | Wei, S. (Wei, S..) [2] | Lin, Y. (Lin, Y..) [3] | Zhu, Y. (Zhu, Y..) [4] | Zhong, Z. (Zhong, Z..) [5] | Zheng, Y. (Zheng, Y..) [6] | Zhuang, Z. (Zhuang, Z..) [7] | Yu, Y. (Yu, Y..) [8]

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Abstract:

In this work, we exploited the synergy between homogeneous and heterogeneous catalysis for the efficient and selective activation of H2O2. The homogeneous catalyst contained a very trace amount of Fe2+ (0.26 ppm), which is lower than the international effluent discharge standard for Fe (0.50 ppm). The heterogeneous catalyst was composed of holey graphitic carbon nitride (g-C3N4) nanosheets carrying highly dispersed single atoms (Mn, Ni, or Cu). Mechanistic studies revealed that the strong interaction between single metal sites and H2O2 forms two adsorption configurations (HOO- and H(O-O)-), which trigger the generation of different reactive oxygen species (ROS). The heterogeneous Mn-C3N4 catalyst provided single Mn-N3 sites that activated H2O2 to produce O2 by forming HOO-Mn-N3, while the adjacent Fe2+ quickly reduced the generated O2 to ˙O2−, which can efficiently remove organic pollutants and inactivate Escherichia coli under neutral conditions. The single-atom Mn-C3N4, in addition, provided photoactive electrons that drive the efficient cycling of the homogeneous Fe2+/Fe3+ catalyst (which is the rate-determining step) under very trace Fe2+ input. By coupling homogeneous and heterogeneous catalysis, an excellent and advanced oxidation process with potential for large-scale application is reported in this work; the findings also shed light on the theoretical aspects of the efficient and selective activation of H2O2 at the atomic level. © 2024 The Royal Society of Chemistry.

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  • [ 1 ] [Yan J.]College of Materials Science and Engineering, Fuzhou University, New Campus, Fujian, Minhou, 350108, China
  • [ 2 ] [Yan J.]Key Laboratory of Advanced Materials Technologies, Fuzhou University, Fuzhou, 350108, China
  • [ 3 ] [Wei S.]College of Materials Science and Engineering, Fuzhou University, New Campus, Fujian, Minhou, 350108, China
  • [ 4 ] [Wei S.]Key Laboratory of Advanced Materials Technologies, Fuzhou University, Fuzhou, 350108, China
  • [ 5 ] [Lin Y.]College of Materials Science and Engineering, Fuzhou University, New Campus, Fujian, Minhou, 350108, China
  • [ 6 ] [Lin Y.]Key Laboratory of Advanced Materials Technologies, Fuzhou University, Fuzhou, 350108, China
  • [ 7 ] [Zhu Y.]Tsinghua-Berkeley Shenzhen Institute, Tsinghua Shenzhen International Graduate School, Shenzhen, 518055, China
  • [ 8 ] [Zhong Z.]College of Materials Science and Engineering, Fuzhou University, New Campus, Fujian, Minhou, 350108, China
  • [ 9 ] [Zhong Z.]Key Laboratory of Advanced Materials Technologies, Fuzhou University, Fuzhou, 350108, China
  • [ 10 ] [Zheng Y.]College of Materials Science and Engineering, Fuzhou University, New Campus, Fujian, Minhou, 350108, China
  • [ 11 ] [Zheng Y.]Key Laboratory of Advanced Materials Technologies, Fuzhou University, Fuzhou, 350108, China
  • [ 12 ] [Zhuang Z.]College of Materials Science and Engineering, Fuzhou University, New Campus, Fujian, Minhou, 350108, China
  • [ 13 ] [Zhuang Z.]Key Laboratory of Advanced Materials Technologies, Fuzhou University, Fuzhou, 350108, China
  • [ 14 ] [Yu Y.]College of Materials Science and Engineering, Fuzhou University, New Campus, Fujian, Minhou, 350108, China
  • [ 15 ] [Yu Y.]Key Laboratory of Advanced Materials Technologies, Fuzhou University, Fuzhou, 350108, China

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Source :

Journal of Materials Chemistry A

ISSN: 2050-7488

Year: 2024

Issue: 28

Volume: 12

Page: 17565-17573

1 0 . 8 0 0

JCR@2023

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ESI Highly Cited Papers on the List: 0 Unfold All

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