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Impact of organic anions on metal hydroxide oxygen evolution catalysts

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journal contribution
posted on 2024-08-22, 09:56 authored by Shujin Hou, Lili Xu, Soumya MukherjeeSoumya Mukherjee, Jian ZhouJian Zhou, Kun-Ting Song, Zhenyu Zhou, Shengli Zhang, Xiao-xin Ma, Julien Warnan, Aliaksandr S. Bandarenka, Roland A. Fischer

Structural metamorphosis of metal−organic frameworks (MOFs) eliciting highly active metal-hydroxide catalysts has come to the fore lately, with much promise. However, the role of organic ligands leaching into electrolytes during alkaline hydrolysis remains unclear. Here, we elucidate the influence of organic carboxylate anions on a family of Ni or NiFe-based hydroxide type catalysts during the oxygen evolution reaction. After excluding interfering variables, i.e., electrolyte purity, Ohmic loss, and electrolyte pH, the experimental results indicate that adding organic anions to the electrolyte profoundly impacts the redox potential of the Ni species versus with only a negligible effect on the oxygen evolution activities. In-depth studies demonstrate plausible reasons behind those observations and allude to far-reaching implications in controlling electrocatalysis in MOFs, mainly where compositional modularity entails fine-tuning organic anions

Funding

Ionic Ultramicroporous Polymer Adsorbents for Energy-efficient Purification of Commodity Chemicals

Science Foundation Ireland

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EXC 2089: e-conversion

Deutsche Forschungsgemeinschaft

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History

Publication

ACS Catalysis 14(16), pp. 12074−12081

Publisher

American Chemical Society

Other Funding information

DFG project BA5795/6-1 is gratefully acknowledged. We also appreciate the financial support from Deutsche Forschungsgemeinschaft under Germany’s excellence strategyEXC2089/1 390776260, Germany’s excellence cluster “e-conversion”, and the DFG project MOFMOX (FI502/43-1). S.M. is thankful to the Alexander von Humboldt foundation, Germany

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  • Bernal Institute

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  • Chemical Sciences

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