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Molecular Functionalization of NiO Nanocatalyst for Enhanced Water Oxidation by Electronic Structure Engineering

Tuning the local environment of nanomaterial‐based catalysts has emerged as an effective approach to optimize their oxygen evolution reaction (OER) performance, yet the controlled electronic modulation around surface active sites remains a great challenge. Herein, directed electronic modulation of N...

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Autores principales: Fan, Lizhou, Zhang, Biaobiao, Qiu, Zhen, Dharanipragada, N. V. R. Aditya, Timmer, Brian J. J., Zhang, Fuguo, Sheng, Xia, Liu, Tianqi, Meng, Qijun, Inge, A. Ken, Edvinsson, Tomas, Sun, Licheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7756281/
https://www.ncbi.nlm.nih.gov/pubmed/32896049
http://dx.doi.org/10.1002/cssc.202001716
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author Fan, Lizhou
Zhang, Biaobiao
Qiu, Zhen
Dharanipragada, N. V. R. Aditya
Timmer, Brian J. J.
Zhang, Fuguo
Sheng, Xia
Liu, Tianqi
Meng, Qijun
Inge, A. Ken
Edvinsson, Tomas
Sun, Licheng
author_facet Fan, Lizhou
Zhang, Biaobiao
Qiu, Zhen
Dharanipragada, N. V. R. Aditya
Timmer, Brian J. J.
Zhang, Fuguo
Sheng, Xia
Liu, Tianqi
Meng, Qijun
Inge, A. Ken
Edvinsson, Tomas
Sun, Licheng
author_sort Fan, Lizhou
collection PubMed
description Tuning the local environment of nanomaterial‐based catalysts has emerged as an effective approach to optimize their oxygen evolution reaction (OER) performance, yet the controlled electronic modulation around surface active sites remains a great challenge. Herein, directed electronic modulation of NiO nanoparticles was achieved by simple surface molecular modification with small organic molecules. By adjusting the electronic properties of modifying molecules, the local electronic structure was rationally tailored and a close electronic structure‐activity relationship was discovered: the increasing electron‐withdrawing modification readily decreased the electron density around surface Ni sites, accelerating the reaction kinetics and improving OER activity, and vice versa. Detailed investigation by operando Raman spectroelectrochemistry revealed that the electron‐withdrawing modification facilitates the charge‐transfer kinetics, stimulates the catalyst reconstruction, and promotes abundant high‐valent γ‐NiOOH reactive species generation. The NiO−C(6)F(5) catalyst, with the optimized electronic environment, exhibited superior performance towards water oxidation. This work provides a well‐designed and effective approach for heterogeneous catalyst fabrication under the molecular level.
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spelling pubmed-77562812020-12-28 Molecular Functionalization of NiO Nanocatalyst for Enhanced Water Oxidation by Electronic Structure Engineering Fan, Lizhou Zhang, Biaobiao Qiu, Zhen Dharanipragada, N. V. R. Aditya Timmer, Brian J. J. Zhang, Fuguo Sheng, Xia Liu, Tianqi Meng, Qijun Inge, A. Ken Edvinsson, Tomas Sun, Licheng ChemSusChem Full Papers Tuning the local environment of nanomaterial‐based catalysts has emerged as an effective approach to optimize their oxygen evolution reaction (OER) performance, yet the controlled electronic modulation around surface active sites remains a great challenge. Herein, directed electronic modulation of NiO nanoparticles was achieved by simple surface molecular modification with small organic molecules. By adjusting the electronic properties of modifying molecules, the local electronic structure was rationally tailored and a close electronic structure‐activity relationship was discovered: the increasing electron‐withdrawing modification readily decreased the electron density around surface Ni sites, accelerating the reaction kinetics and improving OER activity, and vice versa. Detailed investigation by operando Raman spectroelectrochemistry revealed that the electron‐withdrawing modification facilitates the charge‐transfer kinetics, stimulates the catalyst reconstruction, and promotes abundant high‐valent γ‐NiOOH reactive species generation. The NiO−C(6)F(5) catalyst, with the optimized electronic environment, exhibited superior performance towards water oxidation. This work provides a well‐designed and effective approach for heterogeneous catalyst fabrication under the molecular level. John Wiley and Sons Inc. 2020-09-24 2020-11-20 /pmc/articles/PMC7756281/ /pubmed/32896049 http://dx.doi.org/10.1002/cssc.202001716 Text en © 2020 The Authors. Published by Wiley-VCH GmbH This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Full Papers
Fan, Lizhou
Zhang, Biaobiao
Qiu, Zhen
Dharanipragada, N. V. R. Aditya
Timmer, Brian J. J.
Zhang, Fuguo
Sheng, Xia
Liu, Tianqi
Meng, Qijun
Inge, A. Ken
Edvinsson, Tomas
Sun, Licheng
Molecular Functionalization of NiO Nanocatalyst for Enhanced Water Oxidation by Electronic Structure Engineering
title Molecular Functionalization of NiO Nanocatalyst for Enhanced Water Oxidation by Electronic Structure Engineering
title_full Molecular Functionalization of NiO Nanocatalyst for Enhanced Water Oxidation by Electronic Structure Engineering
title_fullStr Molecular Functionalization of NiO Nanocatalyst for Enhanced Water Oxidation by Electronic Structure Engineering
title_full_unstemmed Molecular Functionalization of NiO Nanocatalyst for Enhanced Water Oxidation by Electronic Structure Engineering
title_short Molecular Functionalization of NiO Nanocatalyst for Enhanced Water Oxidation by Electronic Structure Engineering
title_sort molecular functionalization of nio nanocatalyst for enhanced water oxidation by electronic structure engineering
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7756281/
https://www.ncbi.nlm.nih.gov/pubmed/32896049
http://dx.doi.org/10.1002/cssc.202001716
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