Fe-N-C催化剂氧还原反应电位依赖性降解机理的研究

IF 10.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Yuyi Chu, Yuqing Cheng, Pengbo Wang, Jingsen Bai, Xin Guan, Shuo Wang, Chang Lan, Hongxiang Wu, Zhaoping Shi, Siyuan Zhu, Wei Liu, Changpeng Liu, Meiling Xiao, Wei Xing
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引用次数: 0

摘要

Fe-N-C由于其令人印象深刻的催化活性和低廉的成本,被誉为取代昂贵的铂基催化剂用于质子交换膜燃料电池(pemfc)最有前途的候选材料。然而,Fe-N-C催化剂的耐久性仍然是一个主要的挑战,主要是由于对其降解机制的了解不足。在这项研究中,我们监测了氧还原反应(ORR)过程中电极的实时变化,揭示了Fe-N-C催化剂固有的电位依赖降解机制。利用原位微分电化学质谱,我们确定了三个不同程度性能损失的不同电位区域,特别是在低电位下观察到碳腐蚀信号。理论计算和荧光探针实验证实,高电位下的降解机制主要由克服碳氧化能垒的强氧化电位驱动,而低电位下的降解主要由ORR过程中产生的高浓度活性氧(ROS)引起。电势依赖的碳腐蚀导致活性位点的除金属作用同样依赖于工作电势。本研究提供了对各种降解机制之间内在相互关系的全面理解,从而为提高Fe-N-C催化剂在PEMFC应用中的耐久性铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Unraveling the potential-dependent degradation mechanism in Fe-N-C catalysts for oxygen reduction reaction

Fe-N-C is hailed as the most promising candidate for replacing costly platinum-based catalysts for proton-exchange membrane fuel cells (PEMFCs) owing to their impressive catalytic activity and low cost. However, the durability of Fe-N-C catalysts remains a major challenge, primarily due to an insufficient understanding of their degradation mechanisms. In this study, we monitor the real-time changes in the electrode during the oxygen reduction reaction (ORR), shedding light on the potential-dependent degradation mechanisms inherent to Fe-N-C catalysts. Utilizing in-situ differential electrochemical mass spectroscopy, we identify three distinct potential regions with varying degrees of performance loss, notably observing carbon corrosion signals at low potentials. Theoretical calculations and fluorescence probe experiments corroborate that degradation mechanisms at high potentials are primarily driven by strong oxidative potentials that overcome the carbon oxidation energy barrier, whereas the degradation at low potentials is predominantly caused by the high concentrations of reactive oxygen species (ROS) generated during the ORR. The potential-dependent carbon corrosion consequently leads to a similar dependence of demetallation of active sites on the working potential. This study offers a comprehensive understanding of the intrinsic interrelations among various degradation mechanisms, thus paving the way for enhancing the durability of Fe-N-C catalysts in PEMFC applications.

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来源期刊
Science China Chemistry
Science China Chemistry CHEMISTRY, MULTIDISCIPLINARY-
CiteScore
14.40
自引率
7.30%
发文量
3787
审稿时长
2.2 months
期刊介绍: Science China Chemistry, co-sponsored by the Chinese Academy of Sciences and the National Natural Science Foundation of China and published by Science China Press, publishes high-quality original research in both basic and applied chemistry. Indexed by Science Citation Index, it is a premier academic journal in the field. Categories of articles include: Highlights. Brief summaries and scholarly comments on recent research achievements in any field of chemistry. Perspectives. Concise reports on thelatest chemistry trends of interest to scientists worldwide, including discussions of research breakthroughs and interpretations of important science and funding policies. Reviews. In-depth summaries of representative results and achievements of the past 5–10 years in selected topics based on or closely related to the research expertise of the authors, providing a thorough assessment of the significance, current status, and future research directions of the field.
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