Electron Push-Pull Effects for Solution and Solid-State Emission Control in Naphthalene 2,7-Position-Based Donor–Acceptor–Donor

IF 2.7 4区 化学 Q1 CHEMISTRY, ORGANIC Asian Journal of Organic Chemistry Pub Date : 2024-12-08 DOI:10.1002/ajoc.202400631
Min-Ji Kim, Gwiung Nam, Soyoon Lee, Mina Ahn, Prof. Dae Won Cho, Prof. Kyung-Ryang Wee
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Abstract

Organic luminescent materials have garnered significant attention owing to their potential applications, particularly due to their inherent flexibility and ease of processability. Accordingly, the development of strategies that enable precise control over both intra- and intermolecular interactions, which directly influence their emission properties, is of paramount importance. In this study, a series of naphthalene (NAP) 2,7-position-based donor–acceptor–donor (D−A−D) compounds were designed and synthesized to investigate the electron push-pull effect on intramolecular and intermolecular interactions. The energy bandgaps of the compounds were controlled by the electron push-pull effect, resulting in red-shifted emission within 48 nm in the order of increasing electron-donating ability in solution state. Experimental data and theoretical calculations show that the intramolecular charge transfer (ICT) properties of D−A−D compounds are systematically controlled by electron push-pull effects. In particular, the solid-state emission of the compounds showed a redshift in the same order as that observed in solution. This solid-state emission behavior is explained by the electron push-pull effect-dependent intermolecular interactions. Consequently, an efficient single-molecule and multi-molecule emission control strategy by electron push-pull effect in NAP 2,7-position-based D−A−D was successfully demonstrated.

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电子推拉效应对萘2,7-位置供体-受体-供体溶液和固态发射控制的影响
有机发光材料由于其潜在的应用,特别是由于其固有的灵活性和易加工性,已经引起了极大的关注。因此,开发能够精确控制直接影响其发射特性的分子内和分子间相互作用的策略至关重要。本研究设计并合成了一系列萘(NAP) 2,7-位基给体-受体-给体(D−a−D)化合物,以研究电子推拉效应对分子内和分子间相互作用的影响。化合物的能带受电子推挽效应控制,在48 nm范围内产生红移发射,以溶液态给电子能力增加的顺序排列。实验数据和理论计算表明,D−A−D化合物的分子内电荷转移(ICT)性质是由电子推拉效应系统控制的。特别是,化合物的固态发射表现出与溶液中观察到的相同顺序的红移。这种固态发射行为可以用依赖于电子推挽效应的分子间相互作用来解释。因此,成功地证明了一种有效的单分子和多分子发射控制策略,即利用电子推挽效应在NAP 2,7-位基D−A−D中进行发射控制。
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来源期刊
CiteScore
4.70
自引率
3.70%
发文量
372
期刊介绍: Organic chemistry is the fundamental science that stands at the heart of chemistry, biology, and materials science. Research in these areas is vigorous and truly international, with three major regions making almost equal contributions: America, Europe and Asia. Asia now has its own top international organic chemistry journal—the Asian Journal of Organic Chemistry (AsianJOC) The AsianJOC is designed to be a top-ranked international research journal and publishes primary research as well as critical secondary information from authors across the world. The journal covers organic chemistry in its entirety. Authors and readers come from academia, the chemical industry, and government laboratories.
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