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环己烷 - 1,2 - 双邻苯二甲酰亚胺衍生物中的持久性有机室温磷光:异手性与同手性相互作用的显著影响

Persistent Organic Room-Temperature Phosphorescence in Cyclohexane--1,2-Bisphthalimide Derivatives: The Dramatic Impact of Heterochiral vs Homochiral interactions.

作者信息

Favereau Ludovic, Quinton Cassandre, Poriel Cyril, Roisnel Thierry, Jacquemin Denis, Crassous Jeanne

机构信息

Univ Rennes, CNRS, ISCR-UMR 6226, ScanMAT-UMS 2001, F-35000 Rennes, France.

Laboratoire CEISAM, UMR 6230, CNRS, Université de Nantes, Nantes, France.

出版信息

J Phys Chem Lett. 2020 Aug 6;11(15):6426-6434. doi: 10.1021/acs.jpclett.0c01816. Epub 2020 Jul 27.

DOI:10.1021/acs.jpclett.0c01816
PMID:32680427
Abstract

Persistent metal-free room-temperature phosphorescence (RTP) materials attract significant interest owing to the production of long-lived triplet excited states. Although several organic designs show RTP, the impact of intermolecular interactions on the triplet excitons stabilization and migrations remains hardly understood because obtaining different ordered intermolecular interactions while conserving identical molecular electronic properties is very challenging. We propose here a new strategy to circumvent this problem by taking advantage of the distinct molecular packing that can be found between enantiomer and racemic forms of a chiral molecule. Structural, photophysical, and chiroptical investigations of chiral cyclohexane bisphthalimide derivatives showed that heterochiral and homochiral dimer interactions play a crucial role on the triplet excited state stabilization, resulting in higher RTP efficiency for enantiopure systems than for racemic one. This study paves the way to the use of molecular chirality to rationalize supramolecular properties arising from subtle intermolecular interactions.

摘要

持久的无金属室温磷光(RTP)材料由于能产生长寿命的三重激发态而备受关注。尽管有几种有机设计表现出RTP特性,但分子间相互作用对三重态激子的稳定和迁移的影响仍几乎不为人知,因为在保持相同分子电子性质的同时获得不同的有序分子间相互作用极具挑战性。我们在此提出一种新策略来规避这一问题,即利用手性分子的对映体和外消旋体形式之间存在的不同分子堆积。手性环己烷双邻苯二甲酰亚胺衍生物的结构、光物理和手性光学研究表明,异手性和同手性二聚体相互作用对三重激发态的稳定起着关键作用,导致对映纯体系的RTP效率高于外消旋体系。这项研究为利用分子手性来合理化由微妙分子间相互作用产生的超分子性质铺平了道路。

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