高活性、稳定、经济高效的酸性OER电催化剂的开发前景

Hyunseok Yoon, Bobae Ju, Dong-Wan Kim
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引用次数: 1

摘要

聚合物电解质膜水电解(PEMWE)是一种有吸引力的氢能生产技术,具有设计紧凑、操作压力高、电流密度高和氢气纯度高等优点。然而,PEMWE仍然面临几个关键挑战,特别是在阳极的析氧反应(OER)方面。酸性OER需要高活性、耐腐蚀的电催化材料,因为其在苛刻的阳极电势下涉及四电子转移的缓慢动力学。迄今为止,基于IrO2-或RuO2的贵金属电催化剂已被用作PEMWE的商业酸性OER电催化剂。然而,它们在满足工业活动/稳定性相关要求方面仍然不足。最重要的是,这两种贵金属过于稀有和昂贵,这大大阻碍了PEMWE的广泛商业化。因此,迫切需要开发能够在酸性介质中运行的低成本、高活性、高稳定性的OER电催化剂。本文介绍了解决上述问题所采用的各种最先进的策略,根据改善活动、增强稳定性和降低成本等目标对其进行了分类。最后,我们总结了克服这些问题的主要任务和策略,并提出了该领域的一些问题。
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Perspectives on the development of highly active, stable, and cost-effective OER electrocatalysts in acid

Polymer electrolyte membrane water electrolysis (PEMWE) is an attractive hydrogen energy production technology that offers various advantages such as compact design, high operating pressure, high current densities, and high hydrogen gas purity. However, PEMWE still faces several critical challenges, particularly with respect to the oxygen evolution reaction (OER) at the anode. Highly active, corrosion-resistant electrocatalytic materials are required for the acidic OER owing to its sluggish kinetics involving four-electron transfer under harsh anodic potentials. To date, IrO2- or RuO2-based noble metal electrocatalysts have been employed as commercial acidic OER electrocatalysts for PEMWE. However, they remain inadequate in terms of satisfying the industrial activity/stability-related requirements. Above all, the two noble metals are too rare and expensive, which significantly inhibits widespread commercialization of PEMWE. Therefore, low-cost, highly active, and highly stable OER electrocatalysts that can operate in acidic media must be urgently developed. This review paper presents various state-of-the-art strategies employed to address the aforementioned issues by classifying them according to objectives such as improving activity, enhancing stability, and reducing cost. Then, finally, we summarize major tasks and strategies to overcome them and put forward a few issues in this field.

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