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首页> 外文期刊>Journal of power sources >A critical review: 1D/2D nanostructured self-supported electrodes for electrochemical water splitting
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A critical review: 1D/2D nanostructured self-supported electrodes for electrochemical water splitting

机译:关键评论:1D / 2D纳米结构用于电化学水分裂的自支撑电极

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摘要

Hydrogen economy based on electrochemical water splitting represents one of the most promising means for overcoming the rapid consumption of fossil fuels and the serious deterioration of global climate. The development of earth-abundant, efficient, and durable electrocatalysts for hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) plays a vital role in the commercialization of water electrolysis. The self-supported electrode is regarded as an effective approach to developing highly active electrocatalysts with exceptional stability, compared to the conventional coated powdery-type electrocatalysts. However, lack of systematic reviews for the development of self-supported electrodes limits its innovation. The one-dimensional (1D) and two-dimensional (2D) nanostructures are substantially investigated for boosting catalytic activity due to their large surface areas, effective mass transport, and fast electron transfer. Herein, we review the state of-the-art development of self-supported transition-metal-based electrodes with 1D/2D nanostructures for HER, OER, as well as both HER and OER, classify them as general 1D/2D nanoarrays, hierarchical 1D/2D nanostructures, and hollow 1D/2D nanostructures. This review will advance future researches and provide a guideline in developing self-supported electrodes with excellent electrocatalytic performances.
机译:基于电化学水分裂的氢气经济性代表了克服化石燃料的快速消耗以及全球气候的严重恶化之一。用于氢气进化反应(她)和氧气进化反应(Oer)的地球丰富,高效和耐用的电催化剂的发展在水电解的商业化中起着至关重要的作用。与常规涂覆的粉末状型电催化剂相比,自支撑电极被认为是开发具有特殊稳定性的高活性电催化剂的有效方法。然而,缺乏对自支撑电极的发展的系统评价限制了其创新。基本上研究了一维(1D)和二维(2D)纳米结构,用于引起催化活性,因为它们的大表面积,有效的大通传输和快速电子转移。在此,我们审查了与她,OER以及她和OER的1D / 2D纳米结构的自支撑过渡 - 金属基电极的最新发展状态,将它们分类为通用1D / 2D纳米阵列,等级1D / 2D纳米结构和中空1D / 2D纳米结构。本综述将推进未来的研究,并提供具有优异的电催化性能的自支撑电极的指导。

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