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调控铬基金属有机框架材料的局部反应微环境以实现中性电解质中高效的析氧电合成

Regulating the Local Reaction Microenvironment at Chromium Metal-Organic Frameworks for Efficient HO Electrosynthesis in Neutral Electrolytes.

作者信息

Pei Zhihao, Guo Yan, Luan Deyan, Gu Xiaojun, Lou Xiong Wen David

机构信息

Department of Chemistry, City University of Hong Kong, 83 Tat Chee Avenue, Kowloon, Hong Kong, 999077, China.

School of Chemistry and Chemical Engineering, Inner Mongolia University, Hohhot, 010021, China.

出版信息

Adv Mater. 2025 May;37(21):e2500274. doi: 10.1002/adma.202500274. Epub 2025 Mar 30.

Abstract

The electrochemical synthesis of hydrogen peroxide represents a promising alternative to the traditional anthraquinone process, aiming for zero pollution. However, achieving efficient electrochemical synthesis of hydrogen peroxide in neutral electrolytes is challenging due to the sluggish kinetics of the two-electron oxygen reduction reaction. To address this issue, a unique metal-organic framework (MOF) featuring Cr metal sites coordinated with tetrabromoterephthalic acid (Cr-TBA) is synthesized. This specially designed MOF exhibits a distinctive paper-clip-like structure and remarkably enhanced Lewis acidity. Experimental results demonstrate that the obtained structure can facilitate the attraction of OH ions in solution, promoting their accumulation on the catalyst surface. This enhancement leads to excellent performances of Cr-TBA in neutral electrolytes, achieving Faradaic efficiencies of 96-98% and a production rate of 13.4 mol g  h at the current density of 150 mA cm. Operando spectroscopy and density functional theory calculations indicate that this modified microenvironment effectively facilitates the conversion of the OOH intermediates to HO on the catalyst surface.

摘要

过氧化氢的电化学合成是传统蒽醌法的一种有前景的替代方法,目标是实现零污染。然而,由于两电子氧还原反应动力学缓慢,在中性电解质中实现高效的过氧化氢电化学合成具有挑战性。为了解决这个问题,合成了一种独特的金属有机框架(MOF),其具有与四溴对苯二甲酸配位的Cr金属位点(Cr-TBA)。这种特殊设计的MOF呈现出独特的回形针状结构,并具有显著增强的路易斯酸性。实验结果表明,所得结构能够促进溶液中OH离子的吸引,促进它们在催化剂表面的积累。这种增强导致Cr-TBA在中性电解质中表现出色,在150 mA cm的电流密度下,法拉第效率达到96-98%,产率为13.4 mol g h。原位光谱和密度泛函理论计算表明,这种修饰的微环境有效地促进了催化剂表面上OOH中间体向HO的转化。

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