Oxygen Evolution Reaction in Alkaline Environment: Material Challenges and Solutions
Реакция выделения кислорода в щелочной среде: материальные проблемы и решения
2022-03-13
SCID: 54.1/gdzxc6m5
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alkaline environmentmetal-free carbon materialsnon-precious metal-based catalysts (NPMCs)oxygen evolution reaction (OER)transition metal oxides/(oxy)hydroxides
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Abstract (AI)
Abstract The oxygen evolution reaction (OER) generally exists in electrochemistry‐enabled applications that are coupled with cathodic reactions like hydrogen evolution, carbon dioxide reduction, ammonia synthesis, and electrocatalytic hydrogenation. The OER heavily impacts the overall energy efficiency of these devices because the sluggish OER kinetics result in a huge overpotential, thus, a large amount of efficient catalysts are needed. The benchmark iridium and ruthenium (Ir/Ru)‐based materials (mostly used in acid media) are, however, significantly limited by their scarcity. Non‐precious metal‐based catalysts (NPMCs) have emerged as the most promising alternatives; however, they tend to degrade quickly under the harsh operating conditions of typical OER devices. Another challenge is the unsatisfying performance of OER catalysts when integrated in real‐world devices. Herein, the OER active sites for three mainstream types of NPMCs including non‐precious transition metal oxides/(oxy)hydroxides, metal‐free carbon materials, and hybrid non‐precious metal and carbon composites are reviewed. In addition, possible degradation mechanisms for active sites and mitigation strategies are discussed in detail. This review also provides insights into the gaps between R&D of NPMCs for the OER and their applications in practical devices.
Key Findings
1
Integration of OER catalysts into real-world devices often yields unsatisfactory performance, revealing gaps between laboratory R&D and practical application.
2
NPMCs (transition metal oxides/(oxy)hydroxides, metal-free carbon, and metal–carbon hybrids) are promising alternatives but degrade quickly under harsh OER operating conditions.
3
OER kinetics are sluggish in electrochemical devices, causing large overpotentials that dominate overall energy inefficiency.
4
Scarcity of benchmark Ir/Ru catalysts limits their practical use, motivating development of non-precious metal-based catalysts (NPMCs).
5
The review identifies degradation mechanisms of NPMC active sites and discusses mitigation strategies to improve stability and device relevance.
Research Object
Oxygen evolution reaction (OER) in alkaline environments
Research Subject
Material challenges and solutions for non-precious-metal-based OER catalysts (transition metal oxides/(oxy)hydroxides, metal-free carbon materials, and hybrid metal–carbon composites), including active-site identification, degradation mechanisms, mitigation strategies, and gaps between R&D and practical device integration
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2022-03-13
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