Carbon–carbon triple bond‐containing materials for photo(electro)catalytic solar hydrogen production

IF 19.5 1区 材料科学 Q1 CHEMISTRY, PHYSICAL Carbon Energy Pub Date : 2024-06-07 DOI:10.1002/cey2.527
Wenyan Li, Yang Lu, Yawen Tang, Hanjun Sun
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Abstract

The use of solar energy to produce hydrogen has been one of the research hotspots in recent years. With the continuous exploitation of solar hydrogen evolution, the performance of photo(electro)catalysts has been greatly optimized. However, the solar‐driven hydrogen production for most semiconductors, especially for organic semiconductors, is limited due to the lack of active centers and serious electron–hole recombination. Recently, it has been reported that carbon‐carbon triple bonds (C≡C) can function as active sites for hydrogen evolution, and diacetylenic moiety in organic semiconductors is able to increase carrier migration as well. Therefore, organic semiconductors containing C≡C have attracted considerable attention in the past few years. In this review, organic materials or organic–inorganic hybrids containing C≡C for photo(electro)catalytic solar hydrogen production are classified first, including graphdiyne, conjugated acetylene polymers, some covalent organic frameworks, and metal–organic frameworks. After that, the structure, properties, and advantages and disadvantages of C≡C‐containing materials are introduced and summarized. Apart from these, this review also presents advances in materials containing C≡C in the field of solar hydrogen generation. Finally, perspectives on the future development of C≡C‐containing materials in the field of solar hydrogen generation are also briefly anticipated. This review provides pertinent insights into the main challenges and potential advances in the organic semiconductors for solar‐driven hydrogen production, which will also greatly contribute to other photo(electro)catalytic reactions.

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用于光(电)催化太阳能制氢的含碳碳三键材料
利用太阳能制氢是近年来的研究热点之一。随着太阳能氢气进化的不断开发,光(电)催化剂的性能也得到了极大的优化。然而,由于缺乏活性中心和严重的电子-空穴重组,大多数半导体,尤其是有机半导体的太阳能制氢受到限制。最近有报道称,碳碳三键(C≡C)可作为氢进化的活性位点,有机半导体中的二乙炔基也能增加载流子迁移。因此,含有 C≡C 的有机半导体在过去几年中引起了广泛关注。在这篇综述中,首先对用于光(电)催化太阳能制氢的含 C≡C 的有机材料或有机-无机混合物进行了分类,包括石墨炔、共轭乙炔聚合物、一些共价有机框架和金属有机框架。随后,介绍并总结了含 C≡C 材料的结构、性质和优缺点。除此之外,本综述还介绍了含 C≡C 材料在太阳能制氢领域的研究进展。最后,还简要展望了含 C≡C 材料在太阳能制氢领域的未来发展。这篇综述对有机半导体在太阳能制氢方面的主要挑战和潜在进展提供了中肯的见解,这也将极大地促进其他光(电)催化反应。
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来源期刊
Carbon Energy
Carbon Energy Multiple-
CiteScore
25.70
自引率
10.70%
发文量
116
审稿时长
4 weeks
期刊介绍: Carbon Energy is an international journal that focuses on cutting-edge energy technology involving carbon utilization and carbon emission control. It provides a platform for researchers to communicate their findings and critical opinions and aims to bring together the communities of advanced material and energy. The journal covers a broad range of energy technologies, including energy storage, photocatalysis, electrocatalysis, photoelectrocatalysis, and thermocatalysis. It covers all forms of energy, from conventional electric and thermal energy to those that catalyze chemical and biological transformations. Additionally, Carbon Energy promotes new technologies for controlling carbon emissions and the green production of carbon materials. The journal welcomes innovative interdisciplinary research with wide impact. It is indexed in various databases, including Advanced Technologies & Aerospace Collection/Database, Biological Science Collection/Database, CAS, DOAJ, Environmental Science Collection/Database, Web of Science and Technology Collection.
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