A review on oxygen-deficient titanium oxide for photocatalytic hydrogen production

Yan Chen, X. Fu, Zhijian Peng
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Abstract

Photocatalytic technology based on specific band structure of semiconductors offers a promising way to solve the urgent energy and environmental issues in modern society. In particular, hydrogen production from water splitting over semiconductor photocatalysts attracts great attention owing to the clean source and application of energy, which highly depends on the performance of photocatalysts. Among the various photocatalysts, TiO2 has been intensively investigated and used extensively due to its outstanding photocatalytic activity, high chemical stability, non-toxicity and low cost. However, pure TiO2 has a wide band gap of approximately 3.2 eV, which limits its photocatalytic activity for water splitting to generate hydrogen only under ultraviolet light, excluding most of the inexhaustible sunlight for human beings. Fortunately, the band gap of semiconductors can be manipulated, in which introducing oxygen defects is one of the most effective measures to narrow the band gap of titanium oxides. This review starts out by the fundamentals of photocatalytic water splitting for hydrogen production over TiO2, discusses the latest progress in this field, and summarizes the various methods and strategies to induce oxygen defects in TiO2 crystals. Then, the next section outlines the modification approaches of oxygen-deficient titanium oxide (TiO2-δ) to further improve its photocatalytic performance. Finally, a brief summary and outlook of the researches on TiO2-δ photocatalysts for water splitting to produce hydrogen were presented.
光催化制氢用缺氧氧化钛研究进展
基于半导体特定能带结构的光催化技术为解决现代社会紧迫的能源和环境问题提供了一条有希望的途径。特别是半导体光催化剂上的水裂解制氢,由于其能源的清洁和应用备受关注,而这在很大程度上取决于光催化剂的性能。在各种光催化剂中,TiO2因其优异的光催化活性、高的化学稳定性、无毒性和低成本而得到了广泛的研究和应用。然而,纯TiO2的禁带宽度约为3.2 eV,这限制了其光催化活性,仅在紫外光下分解水生成氢,排除了人类取之不竭的大部分阳光。幸运的是,半导体的带隙是可以控制的,其中引入氧缺陷是缩小钛氧化物带隙的最有效措施之一。本文从TiO2光催化水裂解制氢的基本原理出发,讨论了该领域的最新进展,总结了在TiO2晶体中诱导氧缺陷的各种方法和策略。然后,下一节概述了缺氧氧化钛(TiO2-δ)的改性方法,以进一步提高其光催化性能。最后,对TiO2-δ水裂解制氢光催化剂的研究进展进行了总结和展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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