Metal‐organic frameworks‐derived novel nanostructured electrocatalysts for oxygen evolution reaction

Abstract Engineering cost‐effective catalysts with exceptional performance for the electrochemical oxygen evolution reaction (OER) remains crucial for the accelerated development of renewable energy techniques, and especially so, given the pivotal role of OER in water electrolysis. On the basis of t...

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Main Authors: Xinyu Qin, Dongwon Kim, Yuanzhe Piao
Format: Article
Language:English
Published: Wiley 2021-03-01
Series:Carbon Energy
Subjects:
Online Access:https://doi.org/10.1002/cey2.80
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spelling doaj-340b1d6176ca41738295a9df022f6a982021-05-27T18:15:29ZengWileyCarbon Energy2637-93682021-03-01316610010.1002/cey2.80Metal‐organic frameworks‐derived novel nanostructured electrocatalysts for oxygen evolution reactionXinyu Qin0Dongwon Kim1Yuanzhe Piao2Department of Transdisciplinary Studies Graduate School of Convergence Science and Technology Seoul National University Suwon‐si Gyeonggi‐do Republic of KoreaDepartment of Transdisciplinary Studies Graduate School of Convergence Science and Technology Seoul National University Suwon‐si Gyeonggi‐do Republic of KoreaDepartment of Transdisciplinary Studies Graduate School of Convergence Science and Technology Seoul National University Suwon‐si Gyeonggi‐do Republic of KoreaAbstract Engineering cost‐effective catalysts with exceptional performance for the electrochemical oxygen evolution reaction (OER) remains crucial for the accelerated development of renewable energy techniques, and especially so, given the pivotal role of OER in water electrolysis. On the basis of the metal nodes (clusters) and organic linkers, metal‐organic frameworks (MOFs) and their derivatives are rapidly gaining ground in the fabrication of electrocatalysts, with promising catalytic activity and sound durability in OER, thanks to their controllable pore structures, abundant unsaturated active sites of metal ion, extensive specific surface area, as well as easily functionalized/modified surfaces. This review presents an in‐depth understanding of the established progress of MOFs‐derived materials for OER electrocatalysis. The material designing strategies of the pristine, monometallic, and multimetallic MOFs‐based catalysts are summarized to indicate the infinite possibilities of the morphology and the composition of MOF‐derived materials. While emphasis is laid on the essential features of MOF‐derived materials for the electrocatalysis of the corresponding reactions, insights about the applications in OER are discussed. Finally, this paper is concluded by presenting challenges and perspectives for MOF‐derived materials’ future applications in OER electrocatalysis.https://doi.org/10.1002/cey2.80electrocatalysthigh‐performancemetal‐organic frameworksoxygen evolution reaction
collection DOAJ
language English
format Article
sources DOAJ
author Xinyu Qin
Dongwon Kim
Yuanzhe Piao
spellingShingle Xinyu Qin
Dongwon Kim
Yuanzhe Piao
Metal‐organic frameworks‐derived novel nanostructured electrocatalysts for oxygen evolution reaction
Carbon Energy
electrocatalyst
high‐performance
metal‐organic frameworks
oxygen evolution reaction
author_facet Xinyu Qin
Dongwon Kim
Yuanzhe Piao
author_sort Xinyu Qin
title Metal‐organic frameworks‐derived novel nanostructured electrocatalysts for oxygen evolution reaction
title_short Metal‐organic frameworks‐derived novel nanostructured electrocatalysts for oxygen evolution reaction
title_full Metal‐organic frameworks‐derived novel nanostructured electrocatalysts for oxygen evolution reaction
title_fullStr Metal‐organic frameworks‐derived novel nanostructured electrocatalysts for oxygen evolution reaction
title_full_unstemmed Metal‐organic frameworks‐derived novel nanostructured electrocatalysts for oxygen evolution reaction
title_sort metal‐organic frameworks‐derived novel nanostructured electrocatalysts for oxygen evolution reaction
publisher Wiley
series Carbon Energy
issn 2637-9368
publishDate 2021-03-01
description Abstract Engineering cost‐effective catalysts with exceptional performance for the electrochemical oxygen evolution reaction (OER) remains crucial for the accelerated development of renewable energy techniques, and especially so, given the pivotal role of OER in water electrolysis. On the basis of the metal nodes (clusters) and organic linkers, metal‐organic frameworks (MOFs) and their derivatives are rapidly gaining ground in the fabrication of electrocatalysts, with promising catalytic activity and sound durability in OER, thanks to their controllable pore structures, abundant unsaturated active sites of metal ion, extensive specific surface area, as well as easily functionalized/modified surfaces. This review presents an in‐depth understanding of the established progress of MOFs‐derived materials for OER electrocatalysis. The material designing strategies of the pristine, monometallic, and multimetallic MOFs‐based catalysts are summarized to indicate the infinite possibilities of the morphology and the composition of MOF‐derived materials. While emphasis is laid on the essential features of MOF‐derived materials for the electrocatalysis of the corresponding reactions, insights about the applications in OER are discussed. Finally, this paper is concluded by presenting challenges and perspectives for MOF‐derived materials’ future applications in OER electrocatalysis.
topic electrocatalyst
high‐performance
metal‐organic frameworks
oxygen evolution reaction
url https://doi.org/10.1002/cey2.80
work_keys_str_mv AT xinyuqin metalorganicframeworksderivednovelnanostructuredelectrocatalystsforoxygenevolutionreaction
AT dongwonkim metalorganicframeworksderivednovelnanostructuredelectrocatalystsforoxygenevolutionreaction
AT yuanzhepiao metalorganicframeworksderivednovelnanostructuredelectrocatalystsforoxygenevolutionreaction
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