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用于太阳能驱动水分解的半导体/电催化剂耦合策略。

Strategies for Semiconductor/Electrocatalyst Coupling toward Solar-Driven Water Splitting.

作者信息

Thalluri Sitaramanjaneya Mouli, Bai Lichen, Lv Cuncai, Huang Zhipeng, Hu Xile, Liu Lifeng

机构信息

International Iberian Nanotechnology Laboratory (INL) Avenida Mestre Jose Veiga 4715-330 Braga Portugal.

Laboratory of Inorganic Synthesis & Catalysis Ecole Polytechnique Federale de Lausanne EPFL ISIC LSCI, BCH 3305 CH-1015 Lausanne Switzerland.

出版信息

Adv Sci (Weinh). 2020 Feb 4;7(6):1902102. doi: 10.1002/advs.201902102. eCollection 2020 Mar.

Abstract

Hydrogen (H) has a significant potential to enable the global energy transition from the current fossil-dominant system to a clean, sustainable, and low-carbon energy system. While presently global H production is predominated by fossil-fuel feedstocks, for future widespread utilization it is of paramount importance to produce H in a decarbonized manner. To this end, photoelectrochemical (PEC) water splitting has been proposed to be a highly desirable approach with minimal negative impact on the environment. Both semiconductor light-absorbers and hydrogen/oxygen evolution reaction (HER/OER) catalysts are essential components of an efficient PEC cell. It is well documented that loading electrocatalysts on semiconductor photoelectrodes plays significant roles in accelerating the HER/OER kinetics, suppressing surface recombination, reducing overpotentials needed to accomplish HER/OER, and extending the operational lifetime of semiconductors. Herein, how electrocatalyst coupling influences the PEC performance of semiconductor photoelectrodes is outlined. The focus is then placed on the major strategies developed so far for semiconductor/electrocatalyst coupling, including a variety of dry processes and wet chemical approaches. This Review provides a comprehensive account of advanced methodologies adopted for semiconductor/electrocatalyst coupling and can serve as a guideline for the design of efficient and stable semiconductor photoelectrodes for use in water splitting.

摘要

氢(H)在推动全球能源从当前以化石燃料为主导的系统向清洁、可持续和低碳能源系统转变方面具有巨大潜力。目前全球氢气生产主要依赖化石燃料原料,但为了未来的广泛应用,以脱碳方式生产氢气至关重要。为此,光电化学(PEC)水分解被认为是一种对环境负面影响最小的理想方法。半导体光吸收剂和析氢/析氧反应(HER/OER)催化剂都是高效PEC电池的关键组件。大量文献表明,在半导体光电极上负载电催化剂在加速HER/OER动力学、抑制表面复合、降低实现HER/OER所需的过电位以及延长半导体的使用寿命方面发挥着重要作用。本文概述了电催化剂耦合如何影响半导体光电极的PEC性能。然后重点介绍了目前已开发的用于半导体/电催化剂耦合的主要策略,包括各种干法工艺和湿化学方法。本综述全面介绍了用于半导体/电催化剂耦合的先进方法,并可为设计用于水分解的高效稳定半导体光电极提供指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0e68/7080548/7afccd13e7b0/ADVS-7-1902102-g014.jpg

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