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解耦不同失稳机制对非贵金属氧还原催化剂的质子交换膜燃料电池性能衰减的贡献。

Decoupling the Contributions of Different Instability Mechanisms to the PEMFC Performance Decay of Non-noble Metal O-Reduction Catalysts.

作者信息

Ünsal Seçil, Girod Robin, Appel Christian, Karpov Dmitry, Mermoux Michel, Maillard Frédéric, Saveleva Viktoriia A, Tileli Vasiliki, Schmidt Thomas J, Herranz Juan

机构信息

Electrochemistry Laboratory, Paul Scherrer Institut, 5232 Villigen, Switzerland.

Institute of Materials, Ecole Polytechnique Federal de Lausanne, 1015 Lausanne, Switzerland.

出版信息

J Am Chem Soc. 2023 Apr 12;145(14):7845-7858. doi: 10.1021/jacs.2c12751. Epub 2023 Mar 29.

Abstract

Non-noble metal catalysts (NNMCs) hold the potential to replace the expensive Pt-based materials currently used to speed up the oxygen reduction reaction (ORR) in proton exchange membrane fuel cell (PEMFC) cathodes, but they feature poor durability that inhibits their implementation in commercial PEMFCs. This performance decay is commonly ascribed to the operative demetallation of their ORR-active sites, the electro-oxidation of the carbonaceous matrix that hosts these active centers, and/or the chemical degradation of the ionomer, active sites, and/or carbon support by radicals derived from the HO produced as an ORR by-product. However, little is known regarding the relative contributions of these mechanisms to the overall PEMFC performance loss. With this motivation, in this study, we combined four degradation protocols entailing different cathode gas feeds (i.e., air vs N), potential hold values, and durations to decouple the relative impact of the above deactivation mechanisms to the overall performance decay. Our results indicate that HO-related instability does not depend on the operative voltage but only on the ORR charge. Moreover, the electro-oxidation of the carbon matrix at high potentials (which for the catalyst tested herein triggers at 0.7 V) seems to be more detrimental to the NNMCs' activity than the demetallation occurring at low potentials.

摘要

非贵金属催化剂(NNMCs)有潜力取代目前用于加速质子交换膜燃料电池(PEMFC)阴极氧还原反应(ORR)的昂贵铂基材料,但它们的耐久性较差,这阻碍了其在商业PEMFC中的应用。这种性能下降通常归因于其ORR活性位点的有效脱金属、承载这些活性中心的碳质基体的电氧化,和/或由ORR副产物产生的HO衍生的自由基对离聚物、活性位点和/或碳载体的化学降解。然而,对于这些机制对PEMFC整体性能损失的相对贡献知之甚少。出于这个动机,在本研究中,我们结合了四种降解方案,这些方案涉及不同的阴极气体进料(即空气与N)、电位保持值和持续时间,以解耦上述失活机制对整体性能下降的相对影响。我们的结果表明,与HO相关的不稳定性不取决于工作电压,而仅取决于ORR电荷。此外,在高电位下碳基体的电氧化(对于本文测试的催化剂,在0.7 V时触发)似乎比在低电位下发生的脱金属对NNMCs的活性更有害。

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