Interfacial Design of Particulate Photocatalyst Materials for Green Hydrogen Production

Author:

Higashi Tomohiro1ORCID,Domen Kazunari234ORCID

Affiliation:

1. Institute for Tenure Track Promotion University of Miyazaki 1-1 Gakuen-Kibanadai-Nishi Miyazaki 889-2192 Japan

2. Office of University Professors The University of Tokyo 2-11-16 Yayoi Bunkyo-ku Tokyo 113-8656 Japan

3. Research Initiative for Supra-Materials Interdisciplinary Cluster for Cutting Edge Research Shinshu University 4-17-1 Wakasato Nagano 380-8533 Japan

4. Department of Chemistry Kyung Hee University Seoul, 130–701, Republic of Korea

Abstract

AbstractGreen hydrogen production using particulate photocatalyst materials has attracted much attention in recent years because this process could potentially lead to inexpensive and scalable solar‐to‐chemical energy conversion systems. Although the development of efficient particulate photocatalysts enabling one‐step overall water splitting (OWS) with solar‐to‐hydrogen efficiencies in excess of 10 % remains challenging, promising photocatalyst candidates exhibiting OWS activity have been demonstrated. This review provides a comprehensive introduction to the solar‐to‐hydrogen energy conversion process of semiconductor photocatalyst materials and highlights recent advances in photocatalytic OWS via both one‐step and two‐step photoexcitation processes. The review also covers recent developments in the photocatalytic OWS of SrTiO3, including the establishment of large‐scale photocatalytic systems, interfacial design using cocatalysts to enhance water splitting activity, and its photoelectrochemical (PEC) properties at the electrified solid/liquid interface. In addition, there is a special focus on visible‐light‐absorbing oxynitride and oxysulfide particulate photocatalysts with absorption edges near 600 nm. Methods for photocatalyst preparation and surface modification, as well as PEC properties, are also discussed. The semiconductor properties of particulate photocatalysts obtained from photoelectroanalytical evaluations using particulate photoelectrodes are evaluated. This review is intended to provide guidelines for the future development of particulate photocatalysts capable of efficient and stable OWS.

Publisher

Wiley

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