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Lattice Strain Mediated Reversible Reconstruction in CoMoO4·0.69H2O for Intermittent Oxygen Evolution

  • Hongxia Yin
  • , Hengbo Xiao
  • , Ruimin Qin
  • , Jin Chen
  • , Fa Tan
  • , Wu Zhang
  • , Jian Zhao
  • , Liqing Zeng
  • , Yufeng Hu
  • , Fei Pan
  • , Pengxiang Lei
  • , Songliu Yuan
  • , Lihua Qian
  • , Yaqiong Su
  • , Zhen Zhang
  • Huazhong University of Science and Technology
  • Xi'an Jiaotong University
  • China Copper Huazhong Copper Cooperation Limited
  • Hubei University of Technology

Research output: Contribution to journalArticlepeer-review

33 Scopus citations

Abstract

A heterogeneous interface usually plays a versatile role in modulating catalysis and the durability of hybrid electrocatalysts for oxygen evolution reaction (OER), and its intrinsic mechanism is still in dispute due to an uncertain correlation of initial, intermediate and active phases. In this article, the CoMoO4·0.69H2O/Co3O4 heterogeneous interface is configured to understand the evolution kinetics of these correlated phases. Due to the chemically and electrochemically “inert” character of Co3O4 support, lattice strain with 3.31% tuning magnitude in primary CoMoO4·0.69H2O can be inherited after spontaneous dissolution of molybdenum cations in electrolyte, dominating catalytic activity of the reconstructed CoOOH. In situ Raman spectroscopy demonstrates reversible conversion between active CoOOH and amorphous cobalt oxide during OER when positive and negative potentials are sequentially supplied onto hybrid catalysts with favorable strain. Therefore, superior durability with negligible decay after 10 cycles is experimentally identified for intermittent oxygen evolution. Theoretical calculations indicate that appropriate stress within the electrocatalyst could reduce the reaction energy barrier and enhance the OER performance by optimizing the adsorption of intermediates.

Original languageEnglish
Pages (from-to)20100-20109
Number of pages10
JournalACS Applied Materials and Interfaces
Volume15
Issue number16
DOIs
StatePublished - 26 Apr 2023

Keywords

  • Lattice strain
  • amorphous cobalt oxide
  • in situ Raman spectroscopy
  • intermittent oxygen evolution
  • reversible reconstruction

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