Theoretical insights into photo-induced behavior for 3-(1H-phenanthro[9,10-d]imidazol-2-yl)-9-phenyl-9H-carbazol-4-ol fluorophore: Solvation effects

IF 1.9 4区 化学 Q2 CHEMISTRY, ORGANIC
Chang Liu, Han Chen, Lu Feng, Jinfeng Zhao, Liming Fan
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Abstract

Excited-state intramolecular proton transfer (ESIPT) reaction, as one of the most fundamental photochemical behaviors, plays a crucial role in the design of novel optical materials. This study investigates the photo-induced hydrogen bonding behaviors and related ESIPT process of 3-(1H-phenanthro[9,10-d]imidazol-2-yl)-9-phenyl-9H-carbazol-4-ol (CHPHI) in solvents with varying polarities. Based on analyses of the core-valence bifurcation (CVB) index, geometrical structure parameters, topological analysis, and infrared (IR) vibrational spectra, we infer that light excitation facilitates the enhancement of intramolecular hydrogen bonding. This phenomenon can promote the ESIPT process. In particular, we have observed that the enhancement of hydrogen bonding becomes more pronounced as solvent polarity weakens. To further investigate the relationship between solvent polarity and ESIPT behavior, we conduct an exploration of the frontier molecular orbitals (MOs) in CHPHI. Finally, by comparing the magnitudes of excited-state barriers in different solvents, we claim that nonpolar solvents drive the ESIPT reaction for CHPHI fluorophore.

Abstract Image

关于 3-(1H-菲并[9,10-d]咪唑-2-基)-9-苯基-9H-咔唑-4-醇荧光团光诱导行为的理论见解:溶解效应
激发态分子内质子转移(ESIPT)反应是最基本的光化学行为之一,在新型光学材料的设计中起着至关重要的作用。本研究探讨了 3-(1H-菲并[9,10-d]咪唑-2-基)-9-苯基-9H-咔唑-4-醇(CHPHI)在不同极性溶剂中的光诱导氢键行为及相关 ESIPT 过程。根据对核价分叉(CVB)指数、几何结构参数、拓扑分析和红外(IR)振动光谱的分析,我们推断光激发促进了分子内氢键的增强。这种现象可以促进 ESIPT 过程。特别是,我们观察到,随着溶剂极性的减弱,氢键的增强作用会变得更加明显。为了进一步研究溶剂极性与 ESIPT 行为之间的关系,我们对 CHPHI 中的前沿分子轨道(MO)进行了探索。最后,通过比较不同溶剂中激发态势垒的大小,我们认为非极性溶剂推动了 CHPHI 荧光团的 ESIPT 反应。
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来源期刊
CiteScore
3.60
自引率
11.10%
发文量
161
审稿时长
2.3 months
期刊介绍: The Journal of Physical Organic Chemistry is the foremost international journal devoted to the relationship between molecular structure and chemical reactivity in organic systems. It publishes Research Articles, Reviews and Mini Reviews based on research striving to understand the principles governing chemical structures in relation to activity and transformation with physical and mathematical rigor, using results derived from experimental and computational methods. Physical Organic Chemistry is a central and fundamental field with multiple applications in fields such as molecular recognition, supramolecular chemistry, catalysis, photochemistry, biological and material sciences, nanotechnology and surface science.
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