Bang Jieun, Jang Minho, Ahn Yunho, Park Chae Won, Nam Sang Hyun, Macdonald Jennifer, Cho Kayoung, Noh Yoona, Kim Youngmee, Kim Young-Hoon, Oh Juwon, Lee Sae Youn, Park JaeHong
Department of Chemistry and Nanoscience, Ewha Womans University, Seoul 03760, Republic of Korea.
Department of Advanced Battery Convergence Engineering, Dongguk University, Seoul 04620, Republic of Korea.
J Phys Chem Lett. 2024 Aug 29;15(34):8676-8681. doi: 10.1021/acs.jpclett.4c01663. Epub 2024 Aug 19.
Organic charge-transfer complex (CTC) formation has emerged as an effective molecular engineering strategy for achieving the desired optical properties via intermolecular interactions. By synthesizing organic CTCs with carbazole-based electron donors and a 7,7,8,8-tetracyanoquinodimethane acceptor and adopting a molecular linker located remotely from the charge-transfer interface within the donors, we were able to modulate near-infrared absorptive and short-wavelength infrared emissive properties. Structural characterizations performed by using single-crystal X-ray diffraction confirmed that the unique molecular arrangements induced by the steric hindrance from the remotely located linker significantly influence the electronic interactions between the donor and acceptor molecules, resulting in different photophysical properties. Our findings offer an improved understanding of the interplay between molecular packing and optoelectronic properties, providing a foundation for designing advanced materials for optoelectronic applications.
有机电荷转移复合物(CTC)的形成已成为一种有效的分子工程策略,可通过分子间相互作用实现所需的光学性质。通过合成含有咔唑基电子供体和7,7,8,8-四氰基对苯二甲烷受体的有机CTC,并采用位于供体内远离电荷转移界面的分子连接体,我们能够调节近红外吸收和短波长红外发射特性。使用单晶X射线衍射进行的结构表征证实,由远程连接体的空间位阻诱导的独特分子排列显著影响供体和受体分子之间的电子相互作用,从而产生不同的光物理性质。我们的研究结果有助于更好地理解分子堆积与光电性质之间的相互作用,为设计用于光电应用的先进材料奠定基础。