Clarizia Laura, Nadagouda Mallikarjuna N, Dionysiou Dionysios D
Department of Chemical Engineering, Materials and Industrial Production, University of Naples Federico II, p.le V. Tecchio 80, 80125 Naples, Italy.
Water Infrastructure Division, Center for Environmental Solutions and Emergency Response, U. S. EPA, 26 West Martin Luther King Drive, Cincinnati, OH 45268, USA.
Curr Opin Green Sustain Chem. 2023 Apr 25;41. doi: 10.1016/j.cogsc.2023.100825.
Photoelectrocatalytic water splitting and organic reforming have recently received significant attention among researchers due to the potential opportunity to convert sunlight into hydrogen energy using efficient and low-cost photoelectrode materials under practical operating conditions. This paper discusses an overview of various aspects related to the implementation of photoelectrochemical (PEC) cells for hydrogen generation. Information on () reaction energies of photosplitting and photoreforming, () state-of-the-art semiconductor-based materials for PEC hydrogen evolution reaction (HER) active both under UV and visible-light irradiation, () PEC photo-efficiency indicators, and () criteria for the standardization of photoelectrochemical reactor performances are summarized. This short review provides a fundamental background to highlight the most effective approaches developed to date in PEC research and promote future competitive large-scale systems for hydrogen generation for practical applications.
由于在实际操作条件下使用高效且低成本的光电极材料将太阳光转化为氢能存在潜在机会,光电催化水分解和有机重整最近在研究人员中受到了极大关注。本文讨论了与用于制氢的光电化学(PEC)电池实施相关的各个方面的概述。总结了关于()光解和光重整反应能量、()用于PEC析氢反应(HER)在紫外光和可见光照射下均具有活性的最先进半导体基材料、()PEC光效率指标以及()光电化学反应器性能标准化标准的信息。这篇简短综述提供了一个基础背景,以突出PEC研究中迄今为止开发的最有效方法,并推动未来具有竞争力的大规模制氢系统用于实际应用。