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手性碳纳米环的紫外/可见吸收光谱和发射光谱的理论预测与分析

Theoretical Prediction and Analysis of the UV/Visible Absorption and Emission Spectra of Chiral Carbon Nanorings.

作者信息

Daengngern Rathawat, Camacho Cristopher, Kungwan Nawee, Irle Stephan

机构信息

Department of Chemistry, Faculty of Science , King Mongkut's Institute of Technology Ladkrabang , Bangkok 10520 , Thailand.

Institute of Transformative Bio-Molecules (WPI-ITbM) and Department of Chemistry, Graduate School of Science , Nagoya University , Nagoya 464-8601 , Japan.

出版信息

J Phys Chem A. 2018 Sep 20;122(37):7284-7292. doi: 10.1021/acs.jpca.8b07270. Epub 2018 Sep 10.

Abstract

UV/vis absorption and emission spectra of recently synthesized chiral carbon nanorings were simulated using first-principles-based molecular dynamics and time-dependent density functional theory (TD-DFT). The chiral carbon nanorings are derivatives of the [ n]cycloparaphenylene ([ n]CPP) macrocycles, containing an acene unit such as naphthalene, ([ n]CPPN), anthracene ([ n]CPPA), and tetracene ([ n]CPPT), in addition to n paraphenylene units. In order to study the effect of increasing molecular size on absorption and emission spectra, we investigated the cases where n = 6 and 8. Frontier molecular orbital analysis was carried out to give insight into the degree of excitation delocalization and its relationship to the predicted absorption spectra. The lowest excited singlet state S corresponds to a HOMO-LUMO π-π* transition, which is allowed in all chiral carbon nanorings due to lack of molecular symmetry, in contrast to the forbidden HOMO-LUMO transition in the symmetric [ n]CPP molecules. The S absorption peak exhibits a blue-shift with increasing number of paraphenylene units in particular for [ n]CPPN and [ n]CPPA and less so in the case of [ n]CPPT. In the case of CPPN and CPPA, the transition density is mainly localized over a semicircle of the macrocycle with the acene unit in its center but is strongly localized on the tetracene unit in the case of CPPT. Molecular dynamics simulations performed on the excited state potential energy surfaces reveal red-shifted emission of these chiral carbon nanorings when the size of the π-conjugated acene units is increased, although the characteristic [ n]CPP blue-shift with increasing paraphenylene unit number n remains apparent. The anomalous emission blue-shift is caused by the excited state bending and torsional motions that stabilize the π HOMO and destabilize the π* LUMO, resulting in an increasing HOMO-LUMO gap.

摘要

利用基于第一性原理的分子动力学和含时密度泛函理论(TD-DFT)模拟了最近合成的手性碳纳米环的紫外/可见吸收光谱和发射光谱。手性碳纳米环是[ n]环对亚苯基([ n]CPP)大环的衍生物,除了 n 个对亚苯基单元外,还含有一个诸如萘([ n]CPPN)、蒽([ n]CPPA)和并四苯([ n]CPPT)的并苯单元。为了研究分子尺寸增加对吸收光谱和发射光谱的影响,我们研究了 n = 6 和 8 的情况。进行了前沿分子轨道分析,以深入了解激发离域程度及其与预测吸收光谱的关系。最低激发单重态 S 对应于 HOMO-LUMO π-π跃迁,由于缺乏分子对称性,在所有手性碳纳米环中该跃迁都是允许的,这与对称的[ n]CPP 分子中禁阻的 HOMO-LUMO 跃迁形成对比。S 吸收峰随着对亚苯基单元数量的增加而呈现蓝移,特别是对于[ n]CPPN 和[ n]CPPA,而在[ n]CPPT 的情况下蓝移较小。在 CPPN 和 CPPA 的情况下,跃迁密度主要集中在大环的一个半圆上,中心为并苯单元,但在 CPPT 的情况下则强烈集中在并四苯单元上。在激发态势能面上进行的分子动力学模拟表明,当π共轭并苯单元的尺寸增加时,这些手性碳纳米环的发射会发生红移,尽管随着对亚苯基单元数量 n 的增加,特征性的[ n]CPP 蓝移仍然明显。异常的发射蓝移是由激发态弯曲和扭转运动引起的,这些运动使π HOMO 稳定而使π LUMO 不稳定,导致 HOMO-LUMO 能隙增大。

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