Reconstructed Water Oxidation Electrocatalysts: The Impact of Surface Dynamics on Intrinsic Activities

Electroreduction of small molecules such as H2O, CO2, and N2 for producing clean fuels or valuable chemicals provides a sustainable approach to meet the increasing global energy demands and to alleviate the concern on climate change resulting from fossil fuel consumption. On the path to implement th...

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Veröffentlicht in:Advanced functional materials 2021-03, Vol.31 (12), p.n/a
Hauptverfasser: Selvam, N. Clament Sagaya, Du, Lijie, Xia, Bao Yu, Yoo, Pil J., You, Bo
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container_issue 12
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container_title Advanced functional materials
container_volume 31
creator Selvam, N. Clament Sagaya
Du, Lijie
Xia, Bao Yu
Yoo, Pil J.
You, Bo
description Electroreduction of small molecules such as H2O, CO2, and N2 for producing clean fuels or valuable chemicals provides a sustainable approach to meet the increasing global energy demands and to alleviate the concern on climate change resulting from fossil fuel consumption. On the path to implement this purpose, however, several scientific hurdles remain, one of which is the low energy efficiency due to the sluggish kinetics of the paired oxygen evolution reaction (OER). In response, it is highly desirable to synthesize high‐performance and cost‐effective OER electrocatalysts. Recent advances have witnessed surface reconstruction engineering as a salient tool to significantly improve the catalytic performance of OER electrocatalysts. In this review, recent progress on the reconstructed OER electrocatalysts and future opportunities are discussed. A brief introduction of the fundamentals of OER and the experimental approaches for generating and characterizing the reconstructed active sites in OER nanocatalysts are given first, followed by an expanded discussion of recent advances on the reconstructed OER electrocatalysts with improved activities, with a particular emphasis on understanding the correlation between surface dynamics and activities. Finally, a prospect for clean future energy communities harnessing surface reconstruction‐promoted electrochemical water oxidation will be provided. During water splitting, the water oxidation condition reconstructs the electrocatalyst surface and concurrently enhances the performance and durability. To address the surface dynamics of the electrocatalyst and importance of reconstruction process under oxygen evolution reaction (OER) condition, in this review, the fundamentals of OER, origin of surface reconstruction, and comprehensive discussion on the experimental approaches for the electrocatalyst surface reconstruction are presented.
doi_str_mv 10.1002/adfm.202008190
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subjects Clean energy
Clean fuels
electrocatalysis
Electrocatalysts
energy conversion
Fossil fuels
Materials science
Oxidation
Oxygen evolution reactions
Reconstruction
Surface dynamics
water oxidation
title Reconstructed Water Oxidation Electrocatalysts: The Impact of Surface Dynamics on Intrinsic Activities
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