Flores-Lasluisa J X, Huerta F, Cazorla-Amorós D, Morallón E
Dept. Química Física e Instituto Universitario de Materiales, Universidad de Alicante, Ap. 99, E-03080, Alicante, Spain.
Dept. Ingenieria Textil y Papelera, Universitat Politecnica de Valencia, Plaza Ferrandiz y Carbonell, 1, E-03801, Alcoy, Spain.
Environ Res. 2022 Nov;214(Pt 1):113731. doi: 10.1016/j.envres.2022.113731. Epub 2022 Jun 23.
Transition metal oxide-based materials are an interesting alternative to substitute noble-metal based catalyst in energy conversion devices designed for oxygen reduction (ORR), oxygen evolution (OER) and hydrogen evolution reactions (HER). Perovskite (ABO) and spinel (ABO) oxides stand out against other structures due to the possibility of tailoring their chemical composition and, consequently, their properties. Particularly, the electrocatalytic performance of these materials depends on features such as chemical composition, crystal structure, nanostructure, cation substitution level, e orbital filling or oxygen vacancies. However, they suffer from low electrical conductivity and surface area, which affects the catalytic response. To mitigate these drawbacks, they have been combined with carbon materials (e.g. carbon black, carbon nanotubes, activated carbon, and graphene) that positively influence the overall catalytic activity. This review provides an overview on tunable perovskites (mainly lanthanum-based) and spinels featuring 3d metal cations such as Mn, Fe, Co, Ni and Cu on octahedral sites, which are known to be active for the electrochemical energy conversion.
基于过渡金属氧化物的材料是一种有趣的替代物,可在设计用于氧还原(ORR)、析氧(OER)和析氢反应(HER)的能量转换装置中替代基于贵金属的催化剂。钙钛矿(ABO)和尖晶石(ABO)氧化物因其能够调整其化学成分并因此调整其性能而在其他结构中脱颖而出。特别地,这些材料的电催化性能取决于化学成分、晶体结构、纳米结构、阳离子取代水平、e轨道填充或氧空位等特征。然而,它们存在低电导率和低表面积的问题,这会影响催化响应。为了减轻这些缺点,它们已与对整体催化活性有积极影响的碳材料(如炭黑、碳纳米管、活性炭和石墨烯)相结合。本综述概述了可调节的钙钛矿(主要是基于镧的)和尖晶石,这些材料在八面体位置具有3d金属阳离子,如Mn、Fe、Co、Ni和Cu,已知它们对电化学能量转换具有活性。