From Formation to Failure: The Role of Hydrogen Peroxide in Proton Exchange Membrane Technologies

化学 催化作用 过氧化氢 质子 光化学 质子交换膜燃料电池 无机化学 电催化剂 多相催化 均相催化 反应中间体
作者
Tingting Mo,Christopher M. Zalitis,Colleen Jackson,Enrico Petrucco,Jonathan Sharman,Anthony Kucernak
出处
期刊:ACS Catalysis [American Chemical Society]
卷期号:16 (5): 4266-4289
标识
DOI:10.1021/acscatal.5c08411
摘要

High Resolution Image Download MS PowerPoint Slide Hydrogen peroxide is a catalytic byproduct in proton exchange membrane fuel cells (PEMFCs) and proton exchange membrane water electrolyzers (PEMWEs). It may be produced as a side product of the electrochemical processes occurring at the cathode in PEMFCs, or at the anode in PEMWEs, or it may be produced due to gas crossover through either catalytic chemical or electrocatalytic processes. The challenge posed by H 2 O 2 is its catalytic decomposition into highly reactive hydroxyl and peroxyl radicals, which trigger cascading degradation of critical components. This degradation directly compromises device efficiency and shortens the lifespan, representing a limiting factor in the durability of PEMFCs and PEMWEs. However, existing methods for detecting and quantifying in situ H 2 O 2 generation are limited in their ability to accurately reflect real operating conditions (e.g., high current densities, mixed reactant environments), hindering a complete understanding of its dynamic (electro)catalytic formation and impact. To address these gaps and advance the performance of hydrogen-based energy technologies, a comprehensive analysis of H 2 O 2 (electro)catalytic generation mechanisms, detrimental effects, and catalytic mitigation strategies is essential. In this work, we systematically review recent progress in H 2 O 2 research for PEMFCs and PEMWEs, focusing on (1) underlying H 2 O 2 (electro)catalytic formation mechanisms, (2) the role of gas crossover in (electro)catalytic H 2 O 2 formation, (3) current detection techniques (and their limitations), and (4) emerging catalytic strategies for suppressing damage due to H 2 O 2 . This review highlights the need for improved in situ detection tools and targeted suppression approaches to enhance the reliability and longevity of PEMFCs and PEMWEs─important technologies for hydrogen-based energy systems.
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