A new operando surface restructuring pathway via ion-pairing of catalyst and electrolyte for water oxidation
Article
Article Title | A new operando surface restructuring pathway via ion-pairing of catalyst and electrolyte for water oxidation |
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ERA Journal ID | 3854 |
Article Category | Article |
Authors | Zhuang, Linzhou (Author), Li, Zhiheng (Author), Li, Mengran (Author), Tao, Haolan (Author), Mao, Xin (Author), Lian, Cheng (Author), Ge, Lei (Author), Du, Aijun (Author), Xu, Zhi (Author), Shao, Zongping (Author) and Zhu, Zhonghua (Author) |
Journal Title | Chemical Engineering Journal |
Journal Citation | 454 (Part 1), pp. 1-10 |
Article Number | 140071 |
Number of Pages | 10 |
Year | 2023 |
Publisher | Elsevier |
Place of Publication | Netherlands |
ISSN | 1385-8947 |
1873-3212 | |
Digital Object Identifier (DOI) | https://doi.org/10.1016/j.cej.2022.140071 |
Web Address (URL) | https://www.sciencedirect.com/science/article/pii/S1385894722055516 |
Abstract | The highly efficient and stable electrolysis needs the rational control of the catalytically active interface during the reactions. Here we report a new operando surface restructuring pathway activated by pairing catalyst and electrolyte ions. Using SrCoO3-δ-based perovskites as model catalysts, we unveil the critical role of matching the catalyst properties with the electrolyte conditions in modulating catalyst ion leaching and steering surface restructuring processes toward efficient oxygen evolution reaction catalysis in both pH-neutral and alkaline electrolytes. Our results regarding multiple perovskites show that the catalyst ion leaching is controlled by catalyst ion solubility and anions of the electrolyte. Only when the electrolyte cations are smaller than catalyst's leaching cations, the formation of an outer amorphous shell can be triggered via backfilling electrolyte cations into the cationic vacancy at the catalyst surface under electrochemical polarization. Consequently, the current density of reconstructed SrCoO3-δ is increased by 21 folds compared to the pristine SrCoO3-δ at 1.75 V vs. reversible hydrogen electrode and outperforms the benchmark IrO2 by 2.1 folds and most state-of-the-art electrocatalysts in the pH-neutral electrolyte. Our work could be a starting point to rationally control the electrocatalyst surface restructuring via matching the compositional chemistry of the catalyst with the electrolyte properties. |
Keywords | Operando surface restructuring, strontium ion leaching, cation size-matching, oxygen evolution, non-acidic medium |
ANZSRC Field of Research 2020 | 340301. Inorganic materials (incl. nanomaterials) |
400404. Electrochemical energy storage and conversion | |
Byline Affiliations | East China University of Science and Technology, China |
University of Queensland | |
Queensland University of Technology | |
Curtin University | |
Institution of Origin | University of Southern Queensland |
https://research.usq.edu.au/item/q7w96/a-new-operando-surface-restructuring-pathway-via-ion-pairing-of-catalyst-and-electrolyte-for-water-oxidation
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