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首页> 外文期刊>International journal of hydrogen energy >Surface and bulk modification for advanced electrode design in photoelectrochemical water splitting
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Surface and bulk modification for advanced electrode design in photoelectrochemical water splitting

机译:表面和整体修饰,用于光电化学水分解中的高级电极设计

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摘要

Photoelectrochemical (PEC) water splitting provides a prominent strategy for harnessing solar energy in the production of sustainable hydrogen fuel from water. Over the past few decades, extensive efforts have been devoted to develop advanced electrodes for efficient PEC water splitting. This review presents the recent progress in the development of efficient photoanodes through two major approaches: surface modification, including co-catalyst-loading, passivation, and defect engineering; and bulk modification, including hybridization, dopant engineering, and structural control. By virtue of bulk and surface modification a considerable improvement in PEC activity has been obtained so far. Photocurrent response of various anodes observed in the range of 0.063 mA cm(-2)-8.5 mA cm(-2) (as listed in Table 1) require further improvement to upgrade the overall performance efficiency of PEC cells.This review also provides a systematic overview of the fundamentals of PEC water splitting, as well as the key challenges and notable achievements made so far in terms of electrode design and material modification. Finally, future research perspectives that will further advance this field are discussed. The contribution of this paper is to provide fundamental information about bulk and surface modifications, which will aid in the design of advanced electrodes for high-performance PEC cells. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:光电化学(PEC)的水分解技术为利用太阳能生产水来生产可持续的氢燃料提供了重要的策略。在过去的几十年中,为开发用于高效PEC水分解的高级电极投入了大量精力。本文通过两种主要方法介绍了开发高效光阳极的最新进展:表面改性,包括助催化剂负载,钝化和缺陷工程;以及批量修改,包括杂交,掺杂剂工程和结构控制。迄今为止,通过本体和表面改性,已经获得了PEC活性的显着改善。在0.063 mA cm(-2)-8.5 mA cm(-2)范围内观察到的各种阳极的光电流响应(如表1所示)需要进一步改善,以提升PEC电池的整体性能效率。对PEC水分解的基本原理进行了系统的概述,以及迄今为止在电极设计和材料改性方面取得的主要挑战和取得的显著成就。最后,讨论了将进一步推动该领域发展的未来研究观点。本文的作用是提供有关体积和表面改性的基本信息,这将有助于设计高性能PEC电池的高级电极。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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