Nakano Masayoshi, Champagne Benoît
Department of Materials Engineering Science, Graduate School of Engineering Science Osaka University Osaka Japan.
Laboratoire de Chimie Théorique University of Namur Namur Belgium.
Wiley Interdiscip Rev Comput Mol Sci. 2016 Mar;6(2):198-210. doi: 10.1002/wcms.1242. Epub 2016 Feb 25.
For more than 30 years, nonlinear optical (NLO) properties of molecular systems have been actively studied both theoretically and experimentally due to their potential applications in photonics and optoelectronics. Most of the NLO molecular systems are closed-shell species, while recently open-shell molecular species have been theoretically proposed as a new class of NLO systems, which exhibit larger NLO properties than the traditional closed-shell NLO systems. In particular, the third-order NLO property, the second hyperpolarizability , was found to be strongly correlated to the diradical character , which is a quantum-chemically defined index of effective bond weakness or of electron correlation: the values are enhanced in the intermediate y region as compared to the closed-shell (y = 0) and pure open-shell (y = 1) domains. This principle has been exemplified by accurate quantum-chemical calculations for polycyclic hydrocarbons including graphene nanoflakes, multinuclear transition-metal complexes, main group compounds, and so on. Subsequently, some of these predictions have been substantiated by experiments, including two-photon absorption. The fundamental mechanism of the correlation has been explained by using a simple two-site model and the valence configuration interaction method. On the basis of this principle, several molecular design guidelines for controlling have been proposed. They consist in tuning the diradical characters through chemical modifications of realistic open-shell singlet molecules. These results open a new path toward understanding the structure-NLO property relationships and toward realizing a new class of highly efficient NLO materials. 2016, 6:198-210. doi: 10.1002/wcms.1242.
30多年来,分子系统的非线性光学(NLO)性质因其在光子学和光电子学中的潜在应用而受到理论和实验方面的积极研究。大多数NLO分子系统是闭壳层物种,而最近理论上提出开壳层分子物种作为一类新的NLO系统,其表现出比传统闭壳层NLO系统更大的NLO性质。特别是,发现三阶NLO性质,即二阶超极化率,与双自由基特征密切相关,双自由基特征是一个量子化学定义的有效键弱点或电子相关性的指标:与闭壳层(y = 0)和纯开壳层(y = 1)区域相比,在中间y区域值会增强。这一原理已通过对包括石墨烯纳米片、多核过渡金属配合物、主族化合物等多环烃的精确量子化学计算得到例证。随后,其中一些预测已通过包括双光子吸收在内的实验得到证实。利用一个简单的双位点模型和价态构型相互作用方法解释了相关性的基本机制。基于这一原理,已经提出了一些控制的分子设计指导方针。它们包括通过对实际开壳层单重态分子进行化学修饰来调节双自由基特征。这些结果为理解结构 - NLO性质关系以及实现一类新型高效NLO材料开辟了一条新途径。2016年,6:198 - 210。doi: 10.1002/wcms.1242