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用于各向异性手性光电器件的具有手性二维超分子结构的稠环电子受体单晶

Fused-Ring Electron-Acceptor Single Crystals with Chiral 2D Supramolecular Organization for Anisotropic Chiral Optoelectronic Devices.

作者信息

Liu Lixuan, Yang Yang, Meskers Stefan C J, Wang Qingkai, Zhang Liting, Yang Chen, Zhang Jianqi, Zhu Lingyun, Zhang Yajie, Wei Zhixiang

机构信息

CAS Key Laboratory of Nanosystem and Hierarchical Fabrication, National Center for Nanoscience and Technology, Beijing, 100190, China.

School of Future Technology, University of Chinese Academy of Sciences (UCAS), Beijing, 100049, China.

出版信息

Adv Mater. 2023 Nov;35(45):e2304627. doi: 10.1002/adma.202304627. Epub 2023 Oct 8.

DOI:10.1002/adma.202304627
PMID:37467489
Abstract

Supramolecular chiral organization gives π-conjugated molecules access to fascinating specific interactions with circularly polarized light (CPL). Such a feature enables the fabrication of high-performance chiral organic electronic devices that detect or emit CPL directly. Herein, it is shown that chiral fused-ring electron-acceptor BTP-4F single-crystal-based phototransistors demonstrate distinguished CPL discrimination capability with current dissymmetry factor exceeding 1.4, one of the highest values among state-of-the-art direct CPL detectors. Theoretical calculations prove that the chirality at the supramolecular level in these enantiomeric single crystals originates from chiral exciton coupling of a unique quasi-2D supramolecular organization consisting of interlaced molecules with opposite helical conformation. Impressively, such supramolecular organization produces a higher dissymmetry factor along the preferred growth direction of the chiral single crystals in comparison to that of the short axis direction. Furthermore, the amplified, inverted, and also anisotropic current dissymmetry compared to optical dissymmetry is studied by finite element simulations. Therefore, a unique chiral supramolecular organization that is responsible for the excellent chiroptical response and anisotropic electronic properties is developed, which not only enables the construction of high-performance CPL detection devices but also allows a better understanding of the structure-property relationships in chiral organic optoelectronics.

摘要

超分子手性组织使π共轭分子能够与圆偏振光(CPL)产生引人入胜的特定相互作用。这一特性使得能够制造直接检测或发射CPL的高性能手性有机电子器件。在此,研究表明基于手性稠环电子受体BTP-4F单晶的光电晶体管展现出卓越的CPL辨别能力,其电流不对称因子超过1.4,是目前最先进的直接CPL探测器中的最高值之一。理论计算证明,这些对映体单晶中超分子水平的手性源于由具有相反螺旋构象的交错分子组成的独特准二维超分子组织的手性激子耦合。令人印象深刻的是,与短轴方向相比,这种超分子组织在手性单晶的择优生长方向上产生更高的不对称因子。此外,通过有限元模拟研究了与光学不对称相比放大、反转且各向异性的电流不对称。因此,开发出了一种独特的手性超分子组织,它负责优异的手性光学响应和各向异性电子性质,这不仅能够构建高性能CPL检测器件,还能更好地理解手性有机光电子学中的结构-性质关系。

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