Enhancing Oxygen Evolution Reaction Performance of Metal‐Organic Frameworks through Cathode Activation

Author:

Dong Jie1,Boukhvalov Danil W.23,Lv Cuncai4,Humphrey Mark G.5,Zhang Chi1,Huang Zhipeng1ORCID

Affiliation:

1. China-Australia Joint Research Center for Functional Molecular Materials School of Chemical Science and Engineering Institution Tongji University Shanghai 200092 China

2. College of Science Nanjing Forestry University Nanjing 210037 China

3. Institute of Physics and Technology Ural Federal University Mira Str. 19 Yekaterinburg 620002 Russia

4. Key Laboratory of High-precision Computation and Application of Quantum Field Theory of Hebei Province Hebei Key Lab of Optic-electronic Information and Materials The College of Physics Science and Technology Hebei University Baoding 071002 China

5. Research School of Chemistry Australian National University Canberra 2601 ACT Australia

Abstract

AbstractDue to their abundant active sites and porous structures, metal‐organic frameworks (MOFs) have garnered significant interest as oxygen evolution reaction (OER) electrocatalysts. Nevertheless, the development of MOF s‐based electrocatalysts with efficient OER activity and excellent stability simultaneously still face challenges. Herein, a cathodic activation strategy was used to enhance the OER electrocatalytic performance of M‐HHTP for the first time, where M refers to Ni, Cu, Co, Fe, while HHTP denotes 2, 3, 6, 7, 10, 11‐hexahydroxytriphenylene. As a prototype, the activated Ni‐HHTP (HA‐Ni‐HHTP) demonstrates outstanding OER performance, with an overpotential as low as 140 mV at 20 mA cm−2 and a small Tafel slope of 78.7 mV−1, surpassing commercial RuO2 and rivaling state‐of‐the‐art MOFs‐based electrocatalysts. Characterizations and density functional theory calculations reveal that the superior performance of HA‐Ni‐HHTP is primarily ascribed to changes in semiconductor type, contact angle, and oxygen vacancy content induced by cathodic activation. Electrochemical impedance spectroscopy analysis using the transmission line model confirms that cathodic activation accelerates charge transport, enhancing the OER process. Furthermore, the cathodic activation strategy holds promise for improving the water oxidation performance of other MOFs such as Fe‐HHTP, Co‐HHTP, and Cu‐HHTP.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Australian Research Council

Ministry of Education of the People's Republic of China

Higher Education Discipline Innovation Project

Publisher

Wiley

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