Hetero-Motif Molecular Junction Photocatalysts: A New Frontier in Artificial Photosynthesis

IF 17.7 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Lei Zhang, Jiang Liu and Ya-Qian Lan*, 
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引用次数: 0

Abstract

To cope with the increasingly global greenhouse effect and energy shortage, it is urgent to develop a feasible means to convert anthropogenic excess carbon dioxide (CO2) into energy resources. The photocatalytic CO2 reduction reaction (CO2RR) coupled with the water oxidation reaction (WOR), known as artificial photosynthesis, is a green, clean, and promoting strategy to deal with the above issues. Among the reported photocatalytic systems for CO2 reduction, the main challenge is to achieve WOR simultaneously due to the limited charge separation efficiency and complicated dynamic process. To address the problem, scientists have assembled two nanosemiconductor motifs for CO2RR and WOR into a heterojunction photocatalyst to realize artificial photosynthesis. However, it is difficult to clearly explore the corresponding catalytic mechanism and establish an accurate structure–activity relationship at the molecular level for their aperiodic distribution and complicated structural information. Standing on the shoulders of the heterojunction photocatalysts, a new-generation material, hetero-motif molecular junction (HMMJ) photocatalysts, has been developed and studied by our laboratory. A hetero-motif molecular junction is a class of crystalline materials with a well-defined and periodic structure, adjustable assembly mode, and semiconductor-like properties, which is composed of two predesigned motifs with oxidation and reduction, respectively, by coordination or covalent bonds. The intrinsic properties make these catalysts susceptible to functional modifications to improve light absorption and electrical conductivity. The small size and short distance of the motifs can greatly promote the efficiency of photogenerated electron–hole separation and migration. Based on these advantages, they can be used as potential excellent photocatalysts for artificial photosynthesis. Notably, the explicit structural information determined by single-crystal or powder X-ray diffraction can provide a visual platform to explore the reaction mechanism. More importantly, the connection number, spatial distance, interaction, and arrangement mode of the structural motifs can be well-designed to explore the detailed structure–activity relationship that can be hardly studied in nanoheterojunction photocatalyst systems. In this regard, HMMJ photocatalysts can be a new frontier in artificial photosynthesis and serve as an important bridge between molecular photocatalysts and solid photocatalysts. Thus, it is very important to summarize the state-of-the-art of the HMMJ photocatalysts used for artificial photosynthesis and to give in-depth insight to promote future development.

In this Account, we have summarized the recent advances in artificial photosynthesis using HMMJ photocatalysts, mainly focusing on the results in our lab. We present an overview of current knowledge about developed photocatalytic systems for artificial photosynthesis, introduce the design schemes of the HMMJ photocatalysts and their unique advantages as compared to other photocatalysts, summarize the construction strategies of HMMJ photocatalysts and their application in artificial photosynthesis, and explain why hetero-motif molecular junctions can be promising photocatalysts and show that they provide a powerful platform for studying photocatalysis. The structure–activity relationship and charge separation dynamics are illustrated. Finally, we bring our outlook on present challenges and future development of HMMJ photocatalysts and their potential application prospects on other photocatalytic reaction systems. We believe that this Account will afford important insights for the construction of high-efficiency photocatalysts and guidance for the development of more photocatalytic systems in an atom-economic, environmentally friendly, and sustainable way.

Abstract Image

Abstract Image

异质分子交界光催化剂:人工光合作用的新领域。
内容提要 为应对日益严重的全球温室效应和能源短缺问题,亟需开发一种可行的方法,将人类活动产生的过量二氧化碳(CO2)转化为能源资源。光催化二氧化碳还原反应(CO2RR)与水氧化反应(WOR)相结合,被称为人工光合作用,是解决上述问题的一种绿色、清洁、可推广的策略。在已报道的二氧化碳还原光催化系统中,由于电荷分离效率有限且动态过程复杂,实现二氧化碳还原反应与水氧化反应同时进行是主要挑战。为解决这一问题,科学家们将用于 CO2RR 和 WOR 的两种纳米半导体图案组装成一种异质结光催化剂,以实现人工光合作用。然而,由于它们的非周期性分布和复杂的结构信息,很难在分子水平上清晰地探索相应的催化机理和建立准确的结构-活性关系。在异质结光催化剂的基础上,本实验室开发并研究了新一代材料--异质动点分子结(HMMJ)光催化剂。异质分子结是一类具有明确的周期性结构、可调的组装模式和类似半导体性质的晶体材料,由两个预先设计好的基团通过配位键或共价键分别组成氧化和还原基团。这些固有特性使这些催化剂易于进行功能修饰,以改善光吸收和导电性能。图案尺寸小、距离短,可大大提高光生电子-空穴分离和迁移的效率。基于这些优势,它们有望成为人工光合作用的优秀光催化剂。值得注意的是,通过单晶或粉末 X 射线衍射测定的明确结构信息可为探索反应机理提供一个直观的平台。更重要的是,通过精心设计结构基团的连接数、空间距离、相互作用和排列方式,可以探索纳米异质结光催化剂体系中难以研究的详细结构-活性关系。因此,HMMJ 光催化剂可以成为人工光合作用的新领域,并成为分子光催化剂和固体光催化剂之间的重要桥梁。因此,对用于人工光合作用的 HMMJ 光催化剂的最新进展进行总结并提出深入见解对促进未来发展非常重要。我们概述了目前有关已开发的人工光合作用光催化系统的知识,介绍了 HMMJ 光催化剂的设计方案及其与其他光催化剂相比的独特优势,总结了 HMMJ 光催化剂的构建策略及其在人工光合作用中的应用,并解释了异质分子结为什么可以成为有前途的光催化剂,表明它们为研究光催化提供了一个强大的平台。我们还阐述了结构-活性关系和电荷分离动力学。最后,我们展望了 HMMJ 光催化剂目前面临的挑战和未来的发展,以及它们在其他光催化反应体系中的潜在应用前景。我们相信,该开户绑定手机领体验金将为高效光催化剂的构建提供重要启示,并为以原子经济、环境友好和可持续的方式开发更多光催化系统提供指导。
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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来源期刊
Accounts of Chemical Research
Accounts of Chemical Research 化学-化学综合
CiteScore
31.40
自引率
1.10%
发文量
312
审稿时长
2 months
期刊介绍: Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance. Accounts of Chemical Research replaces the traditional article abstract with an article "Conspectus." These entries synopsize the research affording the reader a closer look at the content and significance of an article. Through this provision of a more detailed description of the article contents, the Conspectus enhances the article's discoverability by search engines and the exposure for the research.
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