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三角烯中非线性光谱的物理机制

Physical Mechanism of Nonlinear Spectra in Triangene.

机构信息

Liaoning Provincial Key Laboratory of Novel Micro-Nano Functional Materials, College of Science, Liaoning Petrochemical University, Fushun 113001, China.

The Key Laboratory of Intelligent Computing and Signal Processing, Ministry of Education, Anhui University, Hefei 230601, China.

出版信息

Molecules. 2023 Apr 26;28(9):3744. doi: 10.3390/molecules28093744.

Abstract

In this work, we theoretically investigate the linear and nonlinear optical absorption properties of open triangulene spin chains and cyclic triangulene spin chains in relation to their lengths and shapes. The physical mechanism of local excitation within the triangular alkene unit and the weak charge transfer between the units are discussed. The uniformly distributed electrostatic potential allows the system to have a small permanent dipole moment that blocks the electronic transition in the light excitation such that the electronic transition can only be carried out between adjacent carbon atoms. The one-photon absorption (OPA) spectra and two-photon absorption (TPA) spectra are red-shifted with the addition of triangulene units compared to N = 3TSCs (triangulene spin chains, TSCs). Here, TPA is mainly caused by the first step of the transition. The length of the spin chain has a significant adjustment effect on the photon cross-section. TSCs of different lengths and shapes can control chirality by adjusting the distribution of the electric dipole moment and transition magnetic dipole moment. These analyses reveal the photophysical properties of triangulene and provide a theoretical basis for studying the photophysical properties of triangulene and its derivatives.

摘要

在这项工作中,我们从理论上研究了开放三角烯自旋链和循环三角烯自旋链的线性和非线性光学吸收特性与其长度和形状的关系。讨论了三角形烯烃单元内的局部激发的物理机制和单元之间的弱电荷转移。均匀分布的静电势使系统具有小的永久偶极矩,从而阻止了光激发中的电子跃迁,使得电子跃迁只能在相邻的碳原子之间进行。与 N = 3TSCs(三角烯自旋链,TSCs)相比,加入三角烯单元后,一单光子吸收(OPA)光谱和双光子吸收(TPA)光谱发生红移。在这里,TPA 主要是由跃迁的第一步引起的。自旋链的长度对光子截面有显著的调整作用。不同长度和形状的 TSCs 可以通过调整电偶极矩和跃迁磁偶极矩的分布来控制手性。这些分析揭示了三角烯的光物理性质,并为研究三角烯及其衍生物的光物理性质提供了理论基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/839c/10180230/b1d1c7a5dd57/molecules-28-03744-g001.jpg

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