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通过极性和电子振动效应实现对硼[6]螺旋烯最大电磁干扰/圆偏振发光强度及波长的合理控制

Rational Control of Maximum EMI/CPL Intensity and Wavelength of Bora[6]helicene via Polarity and Vibronic Effects.

作者信息

Liu Yanli, Xu Qiushuang, Wang Li, Gao Aihua, Li Quanjiang, Chen Shenghui, Zhao Yanliang, Wang Meishan, Jiang Jun, Jia Chuanyi

机构信息

School of Physics and Optoelectronics Engineering, Ludong University, 264025 Yantai, Shandong, People's Republic of China.

School of Physics and Electronic Information, Yantai University, 264005 Yantai, Shandong, People's Republic of China.

出版信息

J Phys Chem Lett. 2024 Oct 31;15(43):10818-10825. doi: 10.1021/acs.jpclett.4c02500. Epub 2024 Oct 22.

Abstract

Solvent polarity control as an efficient methodology to regulate the chiroptical properties, including spectral shape, width, intensity, wavelength, etc., has emerged as a novel frontier in optical materials design. However, the underling relationship connecting polarity to the optical property remains unclear. Herein, using state-of-the-art computations and the FC|VG model, the solvent effect on the chiroptical properties of bora[6]helicene was accurately and systematically computed to shed light on this issue. It is found that the vibronic coupling is crucial in explaining the spectral shape, width, and relative intensity of different peaks. Moreover, the intensity and position of the emission (EMI) and circularly polarized luminescence (CPL) are closely related to the polarity of the solvent. Intriguingly, we got a series of good linear relationships between polarity and EMI|CPL (|| ≥ 0.95). Thus, this parameter can be used as a potential descriptor to estimate the intensity and position of EMI|CPL, leading to new strategies for designing fully colored fluorescent materials.

摘要

溶剂极性控制作为一种调节手性光学性质(包括光谱形状、宽度、强度、波长等)的有效方法,已成为光学材料设计的一个新前沿领域。然而,极性与光学性质之间的潜在关系仍不明确。在此,利用最先进的计算方法和FC|VG模型,准确而系统地计算了溶剂对硼[6]螺旋烯手性光学性质的影响,以阐明这一问题。研究发现,振动耦合对于解释不同峰的光谱形状、宽度和相对强度至关重要。此外,发射(EMI)和圆偏振发光(CPL)的强度和位置与溶剂的极性密切相关。有趣的是,我们得到了一系列极性与EMI|CPL之间的良好线性关系(||≥0.95)。因此,该参数可作为一个潜在的描述符来估计EMI|CPL的强度和位置,从而为设计全色荧光材料带来新策略。

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