Prospects of using high entropy oxides as catalysts for the oxygen evolution reaction

IF 7.9 2区 化学 Q1 CHEMISTRY, PHYSICAL
Katrine Louise Svane
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引用次数: 0

Abstract

High entropy oxides (HEOs), containing five or more different metal atoms in addition to oxygen, present a large composition space with rich opportunity to optimise the material properties towards specific applications. Here, the potential of HEOs as electrocatalysts for the oxygen evolution reaction is reviewed. Using rutile oxides as an example, it is demonstrated how the balance between different reaction pathways can be modified by alloying, affecting both activity and stability. Furthermore, alloying leads to changes in the electronic structure, including changes in conductivity and charge transfer between elements. For rutile oxides, the charge transfer improves the activity of the less active elements; however, it correlates with a favourable enthalpy of mixing that may hamper the formation of a randomly ordered crystal. Although these insights may be used to narrow the field of candidate materials, the complementary development of experimental and theoretical models capable of identifying relevant compositions remains important.

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来源期刊
Current Opinion in Electrochemistry
Current Opinion in Electrochemistry Chemistry-Analytical Chemistry
CiteScore
14.00
自引率
5.90%
发文量
272
审稿时长
73 days
期刊介绍: The development of the Current Opinion journals stemmed from the acknowledgment of the growing challenge for specialists to stay abreast of the expanding volume of information within their field. In Current Opinion in Electrochemistry, they help the reader by providing in a systematic manner: 1.The views of experts on current advances in electrochemistry in a clear and readable form. 2.Evaluations of the most interesting papers, annotated by experts, from the great wealth of original publications. In the realm of electrochemistry, the subject is divided into 12 themed sections, with each section undergoing an annual review cycle: • Bioelectrochemistry • Electrocatalysis • Electrochemical Materials and Engineering • Energy Storage: Batteries and Supercapacitors • Energy Transformation • Environmental Electrochemistry • Fundamental & Theoretical Electrochemistry • Innovative Methods in Electrochemistry • Organic & Molecular Electrochemistry • Physical & Nano-Electrochemistry • Sensors & Bio-sensors •
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