碱性介质中氧进化反应的离子和表面敏感相互作用

P. D. Angeles, A. R. I. Bustamante, H. A. S. Sasil, D. E. D. Loresca, J. A. Paraggua
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引用次数: 0

摘要

清洁和可持续能源已转向电化学水分离,将其作为尽量减少碳排放的可行解决方案。电解水通过产生氢气和氧气,将电能转化为化学能。虽然这一储能过程显示出巨大的潜力,但其效率却受到氧进化反应(OER)缓慢动力学的阻碍。因此,它在绿色电解技术中的广泛应用受到了限制,而改善氧进化反应动力学的研究就显得尤为重要。最近的研究突破表明,碱金属阳离子不仅仅是被动的观察者。它们在电双层(EDL)中扮演着复杂的角色,对 OER 动力学产生了积极影响。众多离子的存在及其组合带来了复杂性的挑战。本研究旨在深入探讨碱金属阳离子的水合能量差异对 OER 活性的影响。针对溶液中不同的碱金属阳离子,如 Li+、Na+ 和 K+,在 RuO2 上进行了具体研究,以深入了解这些离子在反应动力学中如何与反应物和中间物种相互作用。研究采用了传统的电化学测试方法,包括循环伏安法 (CV)、线性扫描伏安法 (LSV)、电化学阻抗谱 (EIS) 和加速降解测试 (ADT),以阐明表面活化、电双层相互作用、催化活性和稳定性、欧姆电阻以及质量和电荷传输等关键问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ion- and surface-sensitive interactions during oxygen evolution reaction in alkaline media
Clean and sustainable energy has turned towards electrochemical water splitting as a viable solution in minimizing carbon emissions. Electrolysis of water converts electrical energy to chemical energy, through the production of hydrogen and oxygen gases, which can be harnessed for potential applications without contributing to greenhouse emissions. While this energy storage process shows great potential, its efficiency is hindered by the sluggish kinetics of the oxygen evolution reaction (OER). As a result, its widespread application in green electrolytic technologies is limited hence investigations on improving OER kinetics are of utmost importance. Recent research breakthroughs indicate that alkali metal cations are more than passive observers. They play complex roles in the electric double layer (EDL), which positively influences the OER kinetics. The presence of numerous ions and their combinations presents a challenge of complexity. This study aims to delve into the impact of alkali metal cations on OER activity due to the variance in their hydration energies. Specific investigations focusing on different alkali metal cations in solution, such as Li+, Na+, and K+, was conducted on RuO2 to gain a deeper understanding of how these ions interact with both reactants and intermediate species in the reaction kinetics. Traditional electrochemical tests, including cyclic voltammetry (CV), linear sweep voltammetry (LSV), electrochemical impedance spectroscopy (EIS), and accelerated degradation test (ADT) measurements were employed to elucidate critical aspects such as surface activation, electric double layer interactions, catalytic activity and stability, ohmic resistance, and mass and charge transport.
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