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Elucidating the Influence of Intercalated Anions in NiFe LDH on the Electrocatalytic Behavior of OER: A Kinetic Study

塔菲尔方程 无机化学 化学 催化作用 析氧 反应级数 电催化剂 速率决定步骤 分解水 电化学 反应速率常数 动力学 物理化学 电极 有机化学 物理 光催化 量子力学
作者
Maike Berger,Ioana M. Popa,Leila Negahdar,Stefan Palkovits,Bastian Kaufmann,Moritz Pilaski,Harry E. Hoster,Regina Palkovits
出处
期刊:ChemElectroChem [Wiley]
卷期号:10 (18) 被引量:30
标识
DOI:10.1002/celc.202300235
摘要

Abstract The oxygen evolution reaction (OER) as one half‐cell reaction of electrochemical water splitting has a fundamental impact on water splitting efficiency and thus on the competitiveness of electrochemically generated hydrogen in the energy market. Nickel‐iron layered double hydroxides (NiFe LDH) are among the most promising electrocatalysts for efficient OER under alkaline conditions. Despite intensive research, correlations of the material properties and the resulting kinetically limiting surface processes are poorly investigated. This work focuses on the kinetic behavior of NiFe LDH catalysts containing different anions in the basal spacing in alkaline OER. Steady‐state Tafel plots, impedance measurements as well as reaction order plots were used to elucidate differences in the catalytic performance. All catalysts showed a dual Tafel behavior and fractional reaction orders. For kinetic modelling, the physisorbed hydrogen peroxide mechanism and Temkin adsorption model were adopted to fit experimental data. Our study showed that the intercalated anions affect the kinetics of rate determining steps. The hypophosphite intercalated LDH possessed the highest OER activity and the first step as rate determining. While for both carbonate and borate intercalated NiFe LDH, the second step proved to be rate determining in the low Tafel region, while the first step was found to be rate‐limiting in the high Tafel region.
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