Recent progress on NiFe2O4 spinels as electrocatalysts for the oxygen evolution reaction

IF 4.5 3区 化学 Q1 Chemical Engineering Journal of Electroanalytical Chemistry Pub Date : 2023-08-20 DOI:10.1016/j.jelechem.2023.117703
Zihang Feng , Peng Wang , Ying Cheng , Yuhan Mo , Xiaoyang Luo , Pan Liu , Rui Guo , Xuanwen Liu
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Abstract

As the main energy supply of human social activities, fossil fuels have caused serious pollution to the global environment, so it is extremely urgent to find new green renewable energy. Hydrogen has entered people's field of vision because of its high energy density, no carbon emission, easy storage, transportation, etc. However, the current industrial hydrogen production can still be realized by using fossil fuels, which cannot effectively solve the global pollution problem. Hydrogen production by electrocatalytic water splitting is green and has no by-products, but its development is inhibited by thermodynamic and kinetic obstacles. Therefore, developing a reasonable electrocatalyst to reduce the reaction energy barrier is a difficult problem that must be overcome. Noble metals Ir, Ru, and their oxides have good performance when used as electrocatalysts, but they cannot be used on a large scale due to the cost and content of materials. Transition metals and their oxides, especially spinel materials, also have good performance as electrocatalysts. As a typical inverse spinel, NiFe2O4 is considered a promising OER electrocatalyst because of its high storage, low price, high stability, corrosion resistance, and environmental friendliness. In this paper, the achievements of NiFe2O4 used as electrocatalysts in recent years are reviewed. The evaluation parameters and reaction mechanism of OER were introduced firstly, then the physical and chemical properties, electronic structure, and synthesis methods of NiFe2O4 were introduced, and various modification strategies for improving the OER efficiency of NiFe2O4 in recent years were classified and analyzed emphatically, and the most effective strategies for modifying NiFe2O4 were found out. Then the development prospect of NiFe2O4 electrocatalyst has prospected.

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NiFe2O4尖晶石作为析氧电催化剂的研究进展
化石燃料作为人类社会活动的主要能源供给,对全球环境造成了严重的污染,寻找新的绿色可再生能源迫在眉睫。氢以其能量密度高、无碳排放、易于储存、运输等优点进入了人们的视野。然而,目前的工业制氢仍然可以通过使用化石燃料来实现,无法有效解决全球污染问题。电催化水裂解制氢是一种绿色、无副产物的方法,但其发展受到热力学和动力学障碍的抑制。因此,开发一种合理的电催化剂来降低反应能垒是一个必须克服的难题。贵金属Ir、Ru及其氧化物在用作电催化剂时具有良好的性能,但由于成本和材料含量的原因,不能大规模使用。过渡金属及其氧化物,特别是尖晶石材料,也具有良好的电催化剂性能。作为一种典型的逆尖晶石,NiFe2O4具有高储存量、低价格、高稳定性、耐腐蚀和环境友好等优点,被认为是一种很有前途的OER电催化剂。本文综述了近年来NiFe2O4作为电催化剂的研究进展。首先介绍了OER的评价参数和反应机理,然后介绍了NiFe2O4的物理化学性质、电子结构和合成方法,重点对近年来提高NiFe2O4 OER效率的各种改性策略进行了分类和分析,找出了最有效的改性策略。展望了NiFe2O4电催化剂的发展前景。
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来源期刊
Journal of Electroanalytical Chemistry
Journal of Electroanalytical Chemistry Chemical Engineering-General Chemical Engineering
CiteScore
7.50
自引率
6.70%
发文量
912
审稿时长
>12 weeks
期刊介绍: The Journal of Electroanalytical Chemistry is the foremost international journal devoted to the interdisciplinary subject of electrochemistry in all its aspects, theoretical as well as applied. Electrochemistry is a wide ranging area that is in a state of continuous evolution. Rather than compiling a long list of topics covered by the Journal, the editors would like to draw particular attention to the key issues of novelty, topicality and quality. Papers should present new and interesting electrochemical science in a way that is accessible to the reader. The presentation and discussion should be at a level that is consistent with the international status of the Journal. Reports describing the application of well-established techniques to problems that are essentially technical will not be accepted. Similarly, papers that report observations but fail to provide adequate interpretation will be rejected by the Editors. Papers dealing with technical electrochemistry should be submitted to other specialist journals unless the authors can show that their work provides substantially new insights into electrochemical processes.
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