Weng Hui, Teng Yunyang, Sheng Qi, Zhou Zhongjun, Huang Xuri, Li Zhiru, Zhang Tao
Institute of Theoretical Chemistry, Jilin University Changchun 130023 People's Republic of China
College of Physics, Jilin University Changchun 130012 People's Republic of China.
RSC Adv. 2019 Nov 21;9(65):37919-37925. doi: 10.1039/c9ra08758c. eCollection 2019 Nov 19.
Electrides, a novel kind of ionic compound in which electrons serve as anions, have been proposed as potential second-order nonlinear optical (NLO) materials. In this work, the substituent effects on the electride characteristics and the NLO behaviour of Li@calix[4]pyrrole with an electride-like structure were studied theoretically. The results show that electron-donating and electron-withdrawing groups can effectively increase and decrease the first hyperpolarizability ( ), respectively, without affecting the electride characteristics (electron population). More interestingly, lithiation in which four H atoms bonded to N atoms are substituted by four Li atoms within the core structure of Li@calix[4]pyrrole remarkably improves the electride characteristics, with a large electron population of 0.74 e (1.02 e) at the NNA (ELF) basins, making this structure perhaps the first formal molecular electride with almost one electron isolated from the rest of the molecules. Furthermore, a relationship between the electride characteristics and the NLO properties is found: the more delocalization the excess electron of the electride experiences, the larger the value is. The present investigation may provide useful information for exploring high-performance second-order nonlinear optical materials based on organic electrides.
电子化合物是一种新型离子化合物,其中电子充当阴离子,已被提议作为潜在的二阶非线性光学(NLO)材料。在这项工作中,从理论上研究了取代基对具有类电子结构的Li@杯[4]吡咯的电子化合物特性和NLO行为的影响。结果表明,供电子基团和吸电子基团可分别有效增加和降低第一超极化率( ),而不影响电子化合物特性(电子布居)。更有趣的是,在Li@杯[4]吡咯的核心结构中,与N原子键合的四个H原子被四个Li原子取代的锂化反应显著改善了电子化合物特性,在NNA(ELF)盆地具有0.74 e(1.02 e)的大电子布居,使该结构可能成为第一个几乎有一个电子与分子其余部分隔离的形式上的分子电子化合物。此外,发现了电子化合物特性与NLO性质之间的关系:电子化合物的多余电子离域程度越高, 值越大。本研究可为探索基于有机电子化合物的高性能二阶非线性光学材料提供有用信息。