Kawawaki Tokuhisa, Kataoka Yuki, Ozaki Shuhei, Kawachi Masanobu, Hirata Momoko, Negishi Yuichi
Department of Applied Chemistry, Faculty of Science, Tokyo University of Science, Kagurazaka, Shinjuku-ku, Tokyo 162-8601, Japan.
Chem Commun (Camb). 2021 Jan 14;57(4):417-440. doi: 10.1039/d0cc06809h. Epub 2020 Dec 22.
With global warming and the depletion of fossil resources, our fossil-fuel-dependent society is expected to shift to one that instead uses hydrogen (H) as clean and renewable energy. Water-splitting photocatalysts can produce H from water using sunlight, which are almost infinite on the earth. However, further improvements are indispensable to enable their practical application. To improve the efficiency of the photocatalytic water-splitting reaction, in addition to improving the semiconductor photocatalyst, it is extremely effective to improve the cocatalysts (loaded metal nanoclusters, NCs) that enable the reaction to proceed on the photocatalysts. We have thus attempted to strictly control metal NCs on photocatalysts by introducing the precise-control techniques of metal NCs established in the metal NC field into research on water-splitting photocatalysts. Specifically, the cocatalysts on the photocatalysts were controlled by adsorbing atomically precise metal NCs on the photocatalysts and then removing the protective ligands by calcination. This work has led to several findings on the electronic/geometrical structures of the loaded metal NCs, the correlation between the types of loaded metal NCs and the water-splitting activity, and the methods for producing high water-splitting activity. We expect that the obtained knowledge will lead to clear design guidelines for the creation of practical water-splitting photocatalysts and thereby contribute to the construction of a hydrogen-energy society.
随着全球变暖以及化石资源的枯竭,我们这个依赖化石燃料的社会有望转向一个使用氢气(H)作为清洁可再生能源的社会。光解水催化剂可以利用地球上几乎取之不尽的阳光从水中产生氢气。然而,要实现其实际应用,进一步改进是必不可少的。为了提高光催化水分解反应的效率,除了改进半导体光催化剂外,改进能使反应在光催化剂上进行的助催化剂(负载金属纳米团簇,NCs)也极其有效。因此,我们试图通过将金属纳米团簇领域中建立的金属纳米团簇精确控制技术引入光解水催化剂研究中,来严格控制光催化剂上的金属纳米团簇。具体而言,通过将原子精确的金属纳米团簇吸附在光催化剂上,然后通过煅烧去除保护配体,来控制光催化剂上的助催化剂。这项工作在负载金属纳米团簇的电子/几何结构、负载金属纳米团簇类型与水分解活性之间的相关性以及产生高水分解活性的方法等方面取得了一些发现。我们期望所获得的知识将为实用光解水催化剂的创制带来明确的设计指导方针,从而为氢能社会的建设做出贡献。