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半导体光催化中的作用光谱。

Action spectra in semiconductor photocatalysis.

机构信息

DGIST, 333, Techno Jungang Daero, Hyeonpung-Myeon, Dalseong-Gun, Daegu, 42988, Korea.

出版信息

Chem Soc Rev. 2017 Aug 14;46(16):4877-4894. doi: 10.1039/c7cs00136c.

DOI:10.1039/c7cs00136c
PMID:28665437
Abstract

Action spectra are an increasingly important part of semiconductor photocatalyst research, and comprise a plot of photonic efficiency, η, versus excitation wavelength, λ. The features and theory behind an ideal photocatalytic system are discussed, and used to identify: (i) the key aspect of an ideal action spectrum, namely: it is a plot of η vs. λ which has the same shape as that of the fraction of radiation absorbed by the semiconductor photocatalyst, f, versus λ and (ii) the key requirement when running an action spectrum, namely, that the initial rate of the photocatalytic process is directly proportional to incident photon flux, ρ, at wavelengths where η > 0. The Pt/TiO/MeOH system is highlighted as an example of a photosystem that yields an ideal action spectrum. Most photocatalytic systems exhibit non-ideal action spectra, mostly due to one or more of the following: light intensity effects, crystal phase effects, dye-sensitisation, dye photolysis, charge transfer complex, CTC, formation and localized surface plasmon radiation, LSPR, absorption by a deposited noble metal catalyst. Each of these effects is illustrated using examples taken from the literatures and discussed. A suggested typical protocol for recording the action spectrum and absorption/diffuse reflectance spectrum of a photocatalytic system is described. The dangers of using a dye to probe the activity of a photocatalysts are also discussed, and a possible way to avoid this, via reductive photocatalysis, is suggested.

摘要

动作谱是半导体光催化剂研究中越来越重要的一部分,它包含光子效率 η 与激发波长 λ 的关系图。本文讨论了理想光催化系统的特点和理论,并用于确定:(i) 理想动作谱的关键方面,即:它是 η 与 λ 的关系图,其形状与半导体光催化剂吸收的辐射分数 f 与 λ 的关系图相同;(ii) 运行动作谱的关键要求,即在 η > 0 的波长下,光催化过程的初始速率与入射光子通量 ρ 成正比。Pt/TiO/MeOH 体系被突出为产生理想动作谱的光系统的一个例子。大多数光催化系统表现出非理想动作谱,主要是由于以下一个或多个原因:光强效应、晶体相效应、染料敏化、染料光解、电荷转移复合物 CTC、形成和局域表面等离子体辐射 LSPR、沉积贵金属催化剂的吸收。本文使用文献中的示例说明了这些影响,并进行了讨论。描述了记录光催化系统的动作谱和吸收/漫反射谱的典型建议方案。还讨论了使用染料探测光催化剂活性的危险,并提出了一种通过还原光催化来避免这种情况的可能方法。

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