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甲醇电氧化机理的研究:基于密度泛函理论的电位依赖性研究

Investigation of the mechanism of methanol electrooxidation: a potential-dependent DFT study.

作者信息

Zhang Wei, Huang Biyi, Cui Yang, Shen Lifang, Yan Shubin

机构信息

Nanxun Innovation Institute, Zhejiang University of Water Resources and Electric Power Hangzhou 310018 China

出版信息

RSC Adv. 2025 Apr 8;15(14):11056-11064. doi: 10.1039/d5ra01511a. eCollection 2025 Apr 4.

Abstract

The methanol electrooxidation reaction (MER), a critical process in direct methanol fuel cells, is systematically investigated through potential-dependent density functional theory (DFT) simulations to unravel its mechanism and potential effects on Pt-based catalysts. For pure Pt, the rate-determining steps (RDSs) are identified as methanol adsorption and CO oxidation, leading to a high overpotential of 0.9 V. Alloying Pt with Cu (PtCu) significantly reduces the overpotential to 0.7 V, with CO oxidation remaining the sole RDS. Potential-dependent analysis reveals that PtCu exhibits enhanced methanol adsorption and weakened CO binding strength due to electronic structure modulation, effectively mitigating CO poisoning. Furthermore, multiple reaction pathways occur on PtCu surfaces, accelerating intermediate consumption. This work elucidates the regulatory effects of electrode potential on reaction thermodynamics, pathway selection, and adsorption behavior, providing theoretical insights for designing efficient and CO-tolerant bimetallic catalysts.

摘要

甲醇电氧化反应(MER)是直接甲醇燃料电池中的一个关键过程,通过基于电势的密度泛函理论(DFT)模拟对其进行了系统研究,以揭示其机理以及对铂基催化剂的潜在影响。对于纯铂,速率决定步骤(RDS)被确定为甲醇吸附和一氧化碳氧化,导致高达0.9 V的高过电位。将铂与铜合金化(PtCu)可将过电位显著降低至0.7 V,一氧化碳氧化仍然是唯一的RDS。基于电势的分析表明,由于电子结构调制,PtCu表现出增强的甲醇吸附和减弱的一氧化碳结合强度,有效减轻了一氧化碳中毒。此外,PtCu表面会出现多种反应途径,加速了中间体的消耗。这项工作阐明了电极电势对反应热力学、途径选择和吸附行为的调节作用,为设计高效且耐一氧化碳的双金属催化剂提供了理论见解。

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