Exploring Conformational Regulation of TICT in a D–π–A Fluorophore toward Trace Water Detection

发色团 荧光团 化学 激发态 分子内力 化学物理 荧光 光化学 分子 分子开关 位阻效应 密度泛函理论 放松(心理学) 分子动力学 电荷(物理) 费斯特共振能量转移 合理设计 计算化学 联轴节(管道) 灵活性(工程) 含时密度泛函理论 纳米技术 光电开关 从头算
作者
Smritee Hazarika,Mahalakshmi Narayanan,Gloria Dsouza,Madhavan Jaccob,Marappan Velusamy,Arunkumar Kathiravan
出处
期刊:Journal of Physical Chemistry B [American Chemical Society]
卷期号:130 (18): 4865-4877
标识
DOI:10.1021/acs.jpcb.6c01203
摘要

Elucidating excited-state conformational dynamics in D-π-A systems is central to the development of functional molecules. In particular, the emergence of twisted intramolecular charge transfer (TICT) states offers a powerful handle to regulate electronic relaxation pathways through molecular design. Herein, a systematic investigation of two structurally similar D-π-A chromophores (SV27 and SV31) is engineered to either suppress or facilitate excited-state twisting. The control molecule SV27 exhibits limited conformational flexibility and relaxes predominantly through a locally excited state, whereas the strategic incorporation of a sterically demanding donor fragment in SV31 induces substantial excited state torsional reorganization, leading to the stabilization of a TICT state. A combination of steady-state spectroscopy, time-resolved fluorescence measurements, and quantum chemical calculations reveals a strong coupling between molecular architecture, excited-state potential energy surfaces, and charge transfer dynamics. Solvent-dependent studies further demonstrate that higher polarity of the medium selectively stabilizes the twisted charge separated state, which is identified as a crucial element for the accessibility of TICT. Upon leveraging this sensitivity to the local environment, the TICT-active chromophore SV31 is employed as a highly responsive fluorescent probe for trace water detection in organic solvents, achieving trace level sensitivity (30 ppm). Altogether, this study offers a rational framework by correlating molecular architecture with excited-state twisting and charge separation, providing a rationale for activating TICT and laying the foundation for the development of advanced functional molecular architectures for the detection of water.
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