Unravelling the Impact of the Ionomer on the Degradation Mechanisms in Carbon-Supported Platinum Electrocatalysts: On the Path Toward Durable Proton Exchange Membrane Fuel Cells

离聚物 质子交换膜燃料电池 铂金 催化作用 降级(电信) 材料科学 碳纤维 化学工程 燃料电池 膜 化学 复合材料 有机化学 计算机科学 工程类 聚合物 共聚物 复合数 电信 生物化学
作者
Timo Imhof,Roberta Karla Francesca Della Bella,Paul Paciok,Pascal Lauf,Paul Roumeliotis,Alexander Gunnarson,Ezra Shanli Koh,Ferdi Schüth,Serhiy Cherevko,Marc Heggen,Marc Ledendecker
出处
期刊:ACS Catalysis [American Chemical Society]
卷期号:15 (10): 8611-8623 被引量:11
标识
DOI:10.1021/acscatal.5c01466
摘要

The performance and durability of carbon-supported platinum (Pt/C) electrocatalysts for the oxygen reduction reaction (ORR) in proton exchange membrane fuel cells (PEMFC) are strongly influenced by the characteristics of the carbon support, resulting in different ionomer-catalyst interactions. Our study examines how the ionomer affects the degradation of three Pt/C catalysts with distinct carbon support porosity: nonporous Vulcan, microporous Ketjenblack, and mesoporous Hollow Graphitic Spheres. The application of a voltage cycling accelerated stress test (AST) in aqueous electrolyte half-cell configurations operated at 80 °C allows us to investigate the effect on the degradation at relevant operating conditions by comparing ionomer-free catalyst films with films containing an application-relevant ionomer content. We correlate electrochemically active surface area (ECSA) losses with ex-situ diagnostic methods, including identical location and ex-situ scanning transmission electron microscopy vs secondary electron microscopy (STEM/SE-STEM) and determination of leached platinum via inductively coupled plasma mass spectrometry (ICP-MS). Our results reveal the intricate interplay between carbon-support porosity and ionomer effects on the degradation mechanisms: the nonporous carbon-supported catalyst shows enhanced ECSA loss and altered overall particle coarsening upon ionomer incorporation, which we attribute to extensive adsorption of highly acidic sulfonate groups of the ionomer on the exposed Pt nanoparticles. For the porous carbon-supported catalysts, we observe different effects depending on the location of the particles: (i) enhanced dissolution of particles outside of pores (increased SO 3 – adsorption) and (ii) protection of particles inside of pores (restricted SO 3 – adsorption) from dissolution. However, despite this significant change in the pathway and overall attenuated particle growth, the measured ECSA losses were comparable. We ultimately confirm the practical relevance of our results with complementary ASTs conducted in membrane electrode assembly (MEA) configurations. Our findings offer valuable guidance for the design of Pt/C catalysts and ionomers for optimized catalyst layers, advancing the development of more robust PEMFC technologies.
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