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空间位阻分子对掺杂剂促进有机半导体中的整数电荷转移。

Sterically-Hindered Molecular p-Dopants Promote Integer Charge Transfer in Organic Semiconductors.

作者信息

Charoughchi Somaiyeh, Liu Jiang Tian, Berteau-Rainville Melissa, Hase Hannes, Askari Mohammad S, Bhagat Shubham, Forgione Pat, Salzmann Ingo

机构信息

Department of Chemistry and Biochemistry, Concordia University, 7141 rue Sherbrooke Ouest, H4B 1R6, Montreal, Québec, Canada.

Centre for Research in Molecular Modeling (CERMM), Concordia University, 7141 rue Sherbrooke Ouest, H4B 1R6, Montreal, Québec, Canada.

出版信息

Angew Chem Int Ed Engl. 2023 Aug 1;62(31):e202304964. doi: 10.1002/anie.202304964. Epub 2023 Jun 22.

DOI:10.1002/anie.202304964
PMID:37220083
Abstract

Molecular p-dopants designed to undergo electron transfer with organic semiconductors are typically planar molecules with high electron affinity. However, their planarity can promote the formation of ground-state charge transfer complexes with the semiconductor host and results in fractional instead of integer charge transfer, which is highly detrimental to doping efficiency. Here, we show this process can be readily overcome by targeted dopant design exploiting steric hindrance. To this end, we synthesize and characterize the remarkably stable p-dopant 2,2',2''-(cyclopropane-1,2,3-triylidene)tris(2-(perfluorophenyl)acetonitrile) comprising pendant functional groups that sterically shield its central core while retaining high electron affinity. Finally, we demonstrate it outperforms a planar dopant of identical electron affinity and increases the thin film conductivity by up to an order of magnitude. We believe exploiting steric hindrance represents a promising design strategy towards molecular dopants of enhanced doping efficiency.

摘要

设计用于与有机半导体发生电子转移的分子p型掺杂剂通常是具有高电子亲和力的平面分子。然而,它们的平面性会促进与半导体主体形成基态电荷转移复合物,并导致分数而非整数电荷转移,这对掺杂效率极为不利。在此,我们表明通过利用空间位阻的靶向掺杂剂设计可以轻松克服这一过程。为此,我们合成并表征了非常稳定的p型掺杂剂2,2',2''-(环丙烷-1,2,3-三亚甲基)三(2-(全氟苯基)乙腈),其包含侧链官能团,这些官能团在保留高电子亲和力的同时对其中心核起到空间屏蔽作用。最后,我们证明它优于具有相同电子亲和力的平面掺杂剂,并将薄膜电导率提高了一个数量级。我们认为利用空间位阻是一种有前途的设计策略,可用于提高掺杂效率的分子掺杂剂。

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