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Photoinduced Charge Transfer at Discrete Molecular Interfaces in Cocrystals.

作者信息

Han Han, Zhao Xingang, Williams Malik L, Young Ryan M, Song Bo, Jiao Yang, Liu Bai-Tong, Zhao Xueze, Fang Shuai, Tang Chun, Chen Hongliang, Li Xuesong, Wu Guangcheng, Zhang Ruihua, Xing Yi-Kang, Yang Shuliang, Wu Yong, Li Penghao, Chen Aspen X-Y, Stern Charlotte L, Cai Kang, Wasielewski Michael R, Stoddart J Fraser

机构信息

Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208, United States.

Department of Chemistry, The University of Hong Kong, Pokfulam Road, Hong Kong SAR 999077, China.

出版信息

J Am Chem Soc. 2025 Aug 27;147(34):31374-31386. doi: 10.1021/jacs.5c11418. Epub 2025 Aug 13.

DOI:10.1021/jacs.5c11418
PMID:40802862
Abstract

Precise construction of molecular heterostructures in organic donor-acceptor (D-A) cocrystals is crucial for understanding charge transfer (CT) dynamics and developing high-performance optoelectronic materials. Although cocrystals with densely packed D-A arrays have been widely investigated, discrete heterojunctions at the molecular scale have been scarcely explored. Herein, we demonstrate an approach to create what we have referred to as discrete molecular interfaces in D-A cocrystals employing a tetracationic naphthalenediimide-based macrocycle () and an electron-rich guest pyrene (). The large cavity of reduces its host-guest binding affinity with pyrene in solution but facilitates the formation of A-D-A discrete molecular interfaces in the cocrystal. The cocrystal exhibits a 20 nm red shift in UV-vis absorption and a ∼0.1 eV lower CT state energy compared to the cocrystal, formed from and the monomeric analogue () of , which features conventional 1D alternating D-A stacks. Femtosecond transient absorption microscopy reveals a shorter CT state lifetime of 203 ps in (versus 1083 ps in ), indicating faster charge recombination as a result of stronger electronic coupling at the discrete molecular interfaces in the cocrystal. This research highlights the critical role of discrete molecular interfaces in tailoring CT interactions and excited-state dynamics in the solid state, offering a powerful and versatile strategy for designing optoelectronic materials with molecular-level spatial resolution.

摘要

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