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基于噻唑杂环的有机光伏材料的最新进展。

Recent Advances in Organic Photovoltaic Materials Based on Thiazole-Containing Heterocycles.

机构信息

School of Materials Science and Engineering, Zhengzhou University, Zhengzhou, 450001, China.

National Center for Nanoscience and Technology, Beijing, 100190, China.

出版信息

Macromol Rapid Commun. 2023 Jul;44(13):e2300102. doi: 10.1002/marc.202300102. Epub 2023 May 18.

Abstract

Organic solar cells (OSCs) have achieved great progress, driven by the rapid development of wide bandgap electron donors and narrow bandgap non-fullerene acceptors (NFAs). Among a large number of electron-accepting (A) building blocks, thiazole (Tz) and its derived fused heterocycles have been widely used to construct photovoltaic materials, especially conjugated polymers. Benefiting from the electron deficiency, rigidity, high planarity, and enhanced intra/intermolecular interactions of Tz-containing heterocycles, some related photovoltaic materials exhibit proper energy levels, optimized molecular aggregation, and active layer morphology, leading to excellent photovoltaic performance. This review focuses on the progress of Tz-based photovoltaic materials in the field of OSCs. First, the Tz-based donor and acceptor photovoltaic materials are reviewed. Then, the materials based on promising Tz-containing heterocycles, mainly including thiazolo[5,4-d]thiazole (TzTz), benzo[1,2-d:4,5-d']bis(thiazole) (BBTz), and benzo[d]thiazole (BTz) are summarized and discussed. In addition, the new emerging Tz-fused structures and their application in OSCs are introduced. Finally, perspectives and outlooks for the further development of Tz-containing heterocycle-based photovoltaic materials are proposed.

摘要

有机太阳能电池(OSCs)取得了重大进展,这得益于宽带隙电子给体和窄带隙非富勒烯受体(NFAs)的快速发展。在大量的电子受体(A)构建块中,噻唑(Tz)及其衍生的稠合杂环已被广泛用于构建光伏材料,尤其是共轭聚合物。受益于 Tz 杂环的缺电子性、刚性、高平面性和增强的分子内/间相互作用,一些相关的光伏材料表现出适当的能级、优化的分子聚集和活性层形态,从而获得优异的光伏性能。本综述重点介绍了 Tz 基光伏材料在 OSCs 领域的进展。首先,回顾了基于 Tz 的给体和受体光伏材料。然后,总结和讨论了基于有前途的含 Tz 杂环的材料,主要包括噻唑并[5,4-d]噻唑(TzTz)、苯并[1,2-d:4,5-d']双噻唑(BBTz)和苯并[d]噻唑(BTz)。此外,还介绍了新出现的 Tz 稠合结构及其在 OSCs 中的应用。最后,对进一步开发基于 Tz 杂环的光伏材料提出了展望和看法。

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