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苯并或硒吩并稠合扩展螺旋烯的电子结构和二阶非线性光学性质的理论研究

Theoretical study on the electronic structure and second-order nonlinear optical properties of benzannulated or selenophene-annulated expanded helicenes.

作者信息

Gong Li-Jing, Liu Chun-Yu, Ma Cheng, Lin Wan-Feng, Lv Jin-Kai, Zhang Xiang-Yu

机构信息

Aviation University of Air Force Changchun 130022 Jilin China

Institute of Functional Material Chemistry, National & Local United Engineering Lab for Power Battery, Faculty of Chemistry, Northeast Normal University Changchun 130024 Jilin China.

出版信息

RSC Adv. 2019 Jun 3;9(30):17382-17390. doi: 10.1039/c9ra01136f. eCollection 2019 May 29.

Abstract

Currently, discovering new materials with superior second-order nonlinear optical (NLO) performance has become a very hot research topic in the fields of chemistry and materials science. Now, density functional theory (DFT) has become a powerful tool to predict the performance of novel materials. In this paper, based on benzannulated and selenophene-annulated expanded helicenes, twenty-six helicenes are designed by introduction donor/acceptor moieties and their combinations at different substituent positions. The geometrical/electronic structures, electronic transition, and second-order NLO properties of these helicenes are full investigated by DFT/TDDFT theory. The investigations show that these helicenes have large first hyperpolarizability values ( ). For instance, the value (29.95 × 10 esu) of helicene H24 is about 7 times larger than that of the highly π-delocalized phenyliminomethyl ferrocene complex. In addition, the introduction of acceptor NO unit at R and R positions for helicenes H1 and H15 can obtain the largest value, which is attributed to the enhancement of electron acceptor ability. In view of large NLO response and intrinsic asymmetric structures, the studied helicenes have the possibility to be excellent second-order NLO materials.

摘要

目前,发现具有优异二阶非线性光学(NLO)性能的新材料已成为化学和材料科学领域一个非常热门的研究课题。如今,密度泛函理论(DFT)已成为预测新型材料性能的有力工具。本文基于苯并稠合和硒吩稠合的扩展螺旋烯,通过在不同取代位置引入供体/受体基团及其组合设计了26种螺旋烯。利用DFT/TDDFT理论对这些螺旋烯的几何/电子结构、电子跃迁和二阶NLO性质进行了全面研究。研究表明,这些螺旋烯具有较大的第一超极化率值( )。例如,螺旋烯H24的 值(29.95×10 esu)约为高度π离域的苯基亚氨基甲基二茂铁配合物的7倍。此外,在螺旋烯H1和H15的R和R'位置引入受体NO单元可获得最大的 值,这归因于电子受体能力的增强。鉴于大的NLO响应和固有的不对称结构,所研究的螺旋烯有可能成为优异的二阶NLO材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6d52/9064566/522d60b26fbc/c9ra01136f-f1.jpg

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