Understanding the Effects of Anode Catalyst Conductivity and Loading on Catalyst Layer Utilization and Performance for Anion Exchange Membrane Water Electrolysis

IF 11.3 1区 化学 Q1 CHEMISTRY, PHYSICAL ACS Catalysis Pub Date : 2024-07-03 DOI:10.1021/acscatal.4c02932
Melissa E. Kreider, Haoran Yu, Luigi Osmieri, Makenzie R. Parimuha, Kimberly S. Reeves, Daniela H. Marin, Ryan T. Hannagan, Emily K. Volk, Thomas F. Jaramillo, James L. Young, Piotr Zelenay and Shaun M. Alia*, 
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Abstract

Anion exchange membrane water electrolysis (AEMWE) is a promising technology to produce hydrogen from low-cost, renewable power sources. Recently, the efficiency and durability of AEMWE have improved significantly due to advances in the anion exchange polymers and catalysts. To achieve performances and lifetimes competitive with proton exchange membrane or liquid alkaline electrolyzers, however, improvements in the integration of materials into the membrane electrode assembly (MEA) are needed. In particular, the integration of the oxygen evolution reaction (OER) catalyst, ionomer, and transport layer in the anode catalyst layer has significant impacts on catalyst utilization and voltage losses due to the transport of gases, hydroxide ions, and electrons within the anode. This study investigates the effects of the properties of the OER catalyst and the catalyst layer morphology on performance. Using cross-sectional electron microscopy and in-plane conductivity measurements for four PGM-free catalysts, we determine the catalyst layer thickness, uniformity, and electronic conductivity and further use a transmission line model to relate these properties to the catalyst layer resistance and utilization. We find that increased loading is beneficial for catalysts with high electronic conductivity and uniform catalyst layers, resulting in up to 55% increase in current density at 2 V due to decreased kinetic and catalyst layer resistance losses, while for catalysts with lower conductivity and/or less uniform catalyst layers, there is minimal impact. This work provides important insights into the role of catalyst layer properties beyond intrinsic catalyst activity in AEMWE performance.

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了解阳极催化剂电导率和负载对阴离子交换膜水电解催化剂层利用率和性能的影响
阴离子交换膜电解水(AEMWE)是一种利用低成本可再生能源制氢的前景广阔的技术。最近,由于阴离子交换聚合物和催化剂的进步,AEMWE 的效率和耐久性都有了显著提高。然而,要实现与质子交换膜或液体碱性电解槽相媲美的性能和寿命,还需要改进膜电极组件(MEA)的材料集成。特别是,阳极催化剂层中氧进化反应(OER)催化剂、离子膜和传输层的整合对催化剂利用率和阳极内气体、氢氧根离子和电子传输造成的电压损失有重大影响。本研究调查了 OER 催化剂的特性和催化剂层形态对性能的影响。通过对四种不含 PGM 的催化剂进行横截面电子显微镜和面内电导率测量,我们确定了催化剂层的厚度、均匀性和电子电导率,并进一步使用传输线模型将这些特性与催化剂层的电阻和利用率联系起来。我们发现,对于电子电导率高和催化剂层均匀的催化剂来说,增加负载是有益的,由于动力学和催化剂层电阻损耗的减少,2 V 下的电流密度最多可增加 55%,而对于电导率较低和/或催化剂层不够均匀的催化剂来说,影响则微乎其微。这项工作提供了催化剂层特性在 AEMWE 性能中的作用的重要见解,而非催化剂的内在活性。
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来源期刊
ACS Catalysis
ACS Catalysis CHEMISTRY, PHYSICAL-
CiteScore
20.80
自引率
6.20%
发文量
1253
审稿时长
1.5 months
期刊介绍: ACS Catalysis is an esteemed journal that publishes original research in the fields of heterogeneous catalysis, molecular catalysis, and biocatalysis. It offers broad coverage across diverse areas such as life sciences, organometallics and synthesis, photochemistry and electrochemistry, drug discovery and synthesis, materials science, environmental protection, polymer discovery and synthesis, and energy and fuels. The scope of the journal is to showcase innovative work in various aspects of catalysis. This includes new reactions and novel synthetic approaches utilizing known catalysts, the discovery or modification of new catalysts, elucidation of catalytic mechanisms through cutting-edge investigations, practical enhancements of existing processes, as well as conceptual advances in the field. Contributions to ACS Catalysis can encompass both experimental and theoretical research focused on catalytic molecules, macromolecules, and materials that exhibit catalytic turnover.
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