In situ and Operando Spectroscopies in Photocatalysis: Powerful Techniques for a Better Understanding of the Performance and the Reaction Mechanism

IF 7.1 2区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Topics in Current Chemistry Pub Date : 2022-08-11 DOI:10.1007/s41061-022-00387-5
Houeida Issa Hamoud, Lukasz Wolski, Ilia Pankin, Miguel A. Bañares, Marco Daturi, Mohamad El-Roz
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引用次数: 7

Abstract

In photocatalysis, a set of elemental steps are involved together at different timescales to govern the overall efficiency of the process. These steps are divided as follow: (1) photon absorption and excitation (in femtoseconds), (2) charge separation (femto- to picoseconds), (3) charge carrier diffusion/transport (nano- to microseconds), and (4 and 5) reactant activation/conversion and mass transfer (micro- to milliseconds). The identification and quantification of these steps, using the appropriate tool/technique, can provide the guidelines to emphasize the most influential key parameter that improve the overall efficiency and to develop the “photocatalyst by design” concept. In this review, the identification/quantification of reactant activation/conversion and mass transfer (steps 4 and 5) is discussed in details using the in situ/operando techniques, especially the infrared (IR), Raman, and X-ray absorption spectroscopy (XAS). The use of these techniques in photocatalysis was highlighted by the most recent and conclusive case studies which allow a better characterization of the active site and reveal the reaction pathways in order to establish a structure–performance relationship. In each case study, the reaction conditions and the reactor design for photocatalysis (pressure, temperature, concentration, etc.) were thoroughly discussed. In the last part, some examples in the use of time-resolved techniques (time-resolved FTIR, photoluminescence, and transient absorption) are also presented as an author’s guideline to study the elemental steps in photocatalysis at shorter timescale (ps, ns, and µs).

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光催化中的原位和操作光谱:更好地理解性能和反应机理的强大技术
在光催化中,一组基本步骤在不同的时间尺度上一起参与,以控制整个过程的效率。这些步骤划分如下:(1)光子吸收和激发(飞秒),(2)电荷分离(飞秒到皮秒),(3)电荷载流子扩散/输运(纳到微秒),(4和5)反应物活化/转化和传质(微到毫秒)。使用适当的工具/技术对这些步骤进行识别和量化,可以提供指导方针,以强调提高整体效率和发展“设计光催化剂”概念的最具影响力的关键参数。在这篇综述中,详细讨论了使用原位/operando技术,特别是红外(IR),拉曼和x射线吸收光谱(XAS)来鉴定/定量反应物的活化/转化和传质(步骤4和5)。这些技术在光催化中的应用在最近的结论性案例研究中得到了强调,这些研究可以更好地表征活性位点并揭示反应途径,以便建立结构-性能关系。在每个案例中,对光催化的反应条件和反应器设计(压力、温度、浓度等)进行了深入的讨论。在最后一部分中,使用时间分辨技术(时间分辨FTIR,光致发光和瞬态吸收)的一些例子也作为作者在较短时间尺度(ps, ns和µs)下研究光催化基本步骤的指南。
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来源期刊
Topics in Current Chemistry
Topics in Current Chemistry Chemistry-General Chemistry
CiteScore
13.70
自引率
1.20%
发文量
48
期刊介绍: Topics in Current Chemistry is a journal that presents critical reviews of present and future trends in modern chemical research. It covers all areas of chemical science, including interactions with related disciplines like biology, medicine, physics, and materials science. The articles in this journal are organized into thematic collections, offering a comprehensive perspective on emerging research to non-specialist readers in academia or industry. Each review article focuses on one aspect of the topic and provides a critical survey, placing it in the context of the collection. Selected examples highlight significant developments from the past 5 to 10 years. Instead of providing an exhaustive summary or extensive data, the articles concentrate on methodological thinking. This approach allows non-specialist readers to understand the information fully and presents the potential prospects for future developments.
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