Correlating the Valence State with the Adsorption Behavior of a Cu‐Based Electrocatalyst for Furfural Oxidation with Anodic Hydrogen Production Reaction

Author:

Yang Ming1ORCID,Li Yingying1,Dong Chung‐Li2,Li Shengkai1,Xu Leitao1,Chen Wei1,Wu Jingcheng1,Lu Yuxuan1,Pan Yuping1,Wu Yandong1,Luo Yongxiang1,Huang Yu‐Cheng2,Wang Shuangyin1,Zou Yuqin1ORCID

Affiliation:

1. State Key Laboratory of Chem/Bio‐Sensing and Chemometrics, College of Chemistry and Chemical Engineering Hunan University Changsha Hunan 410082 P. R. China

2. Research Center for X‐ray Science & Department of Physics Tamkang University New Taipei City 25137 Taiwan

Abstract

AbstractThe low‐potential furfural oxidation reaction (FFOR) on a Cu‐based electrocatalyst can produce H2 at the anode, thereby providing a bipolar H2 production system with an ultralow cell voltage. However, the intrinsic activity and stability of the Cu‐based electrocatalyst for the FFOR remain unsatisfactory for practical applications. This study investigates the correlation between the valence state and the adsorption behavior of the Cu‐based electrocatalyst in furfural oxidation. Cu0 is the adsorption site with low intrinsic activity. Cu+, which exists in the form of Cu(OH)ads in alkaline electrolytes, has no adsorption ability but can improve the performance of Cu0 by promoting the adsorption of FF. Moreover, a mixed‐valence Cu‐based electrocatalyst (MV Cu) with high intrinsic activity and stability is prepared electrochemically. With the MV Cu catalyst, the assembled dual‐side H2 production electrolyzer has a low electricity requirement of only 0.24 kWh mH2−3 at an ultralow cell voltage of 0.3 V, and it exhibits sufficient stability. This study not only correlates the valence state with the adsorption behavior of the Cu‐based electrocatalyst for the low‐potential FFOR with anodic H2 production but also reveals the mechanism of deactivation to provide design principles for Cu‐based electrocatalysts with satisfactory stability.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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