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Metallic nanostructures with low dimensionality for electrochemical water splitting

机译:具有低维度的金属纳米结构用于电化学水分裂的低维度

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摘要

Metallic nanostructures with low dimensionality (one-dimension and two-dimension) possess unique structural characteristics and distinctive electronic and physicochemical properties including high aspect ratio, high specific surface area, high density of surface unsaturated atoms and high electron mobility. These distinctive features have rendered them remarkable advantages over their bulk counterparts for surface-related applications, for example, electrochemical water splitting. In this review article, we highlight the recent research progress in low-dimensional metallic nanostructures for electrochemical water splitting including hydrogen evolution reaction (HER) and oxygen evolution reaction (OER). Fundamental understanding of the electrochemistry of water splitting including HER and OER is firstly provided from the aspects of catalytic mechanisms, activity descriptors and property evaluation metrics. Generally, it is challenging to obtain low-dimensional metallic nanostructures with desirable characteristics for HER and OER. We hereby introduce several typical methods for synthesizing one-dimensional and two-dimensional metallic nanostructures including organic ligand-assisted synthesis, hydrothermal/solvothermal synthesis, carbon monoxide confined growth, topotactic reduction, and templated growth. We then put emphasis on the strategies adopted for the design and fabrication of high-performance low-dimensional metallic nanostructures for electrochemical water splitting such as alloying, structure design, surface engineering, interface engineering and strain engineering. The underlying structure-property correlation for each strategy is elucidated aiming to facilitate the design of more advanced electrocatalysts for water splitting. The challenges and perspectives for the development of electrochemical water splitting and low-dimensional metallic nanostructures are also proposed.
机译:具有低维度(一维和二维)的金属纳米结构具有独特的结构特征和独特的电子和物理化学性质,包括高纵横比,高比表面积,高密度的表面不饱和原子和高电子迁移率。这些独特的特征使它们具有显着的优势,优于与表面相关的应用,例如电化学水分裂。在本文中,我们突出了近期金属纳米结构的最近研究进展,用于电化学水分分裂,包括氢进化反应(她)和氧气进化反应(oer)。首先从催化机制,活动描述师和物业评估指标的方面提供了对包括她和oer的水分裂电化学的基本理解。通常,获得对她和伊尔的理想特征具有所需特性的低维金属纳米结构是挑战性的。在此引入了几种典型的方法,用于合成一维和二维金属纳米结构,包括有机配体辅助合成,水热/溶液合成,一氧化碳局限性生长,拓展性还原和模板化生长。然后,我们强调了用于高性能低维金属纳米结构的设计和制造用于电化学水分裂的策略,如合金,结构设计,表面工程,界面工程和应变工程。阐明了每种策略的潜在结构性质相关性,旨在促进更先进的水分裂电催化剂的设计。还提出了电化学水分解和低维金属纳米结构的挑战和观点。

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  • 来源
    《Chemical Society Reviews》 |2020年第10期|共35页
  • 作者单位

    Soochow Univ Coll Chem Chem Engn &

    Mat Sci 199 Renai Rd Suzhou 215123 Jiangsu Peoples R China;

    Soochow Univ Coll Chem Chem Engn &

    Mat Sci 199 Renai Rd Suzhou 215123 Jiangsu Peoples R China;

    Soochow Univ Coll Chem Chem Engn &

    Mat Sci 199 Renai Rd Suzhou 215123 Jiangsu Peoples R China;

    Soochow Univ Coll Chem Chem Engn &

    Mat Sci 199 Renai Rd Suzhou 215123 Jiangsu Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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