Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7223759 | Optik - International Journal for Light and Electron Optics | 2018 | 13 Pages |
Abstract
A series of novel biphenalenyl diradical Ï dimer have been theoretically designed via linking the (super) alkali to the biphenalenyl diradical Ï dimer with boron substitution. Firstly, we designed three molecules, Li-BC25H18 (1), Na-BC25H18 (2), K-BC25H18 (3). It is revealed that energy gaps (Egap) between highest occupied molecular orbital (HOMO) and lowest unoccupied molecular orbital (LUMO) of all molecules are in a range of 1.321-1.350â¯ev. The results indicate that the first hyperpolarizabilities of M-Ï dimer (Mâ¯=â¯Li, Na, K) increase with alkali atom number. Potassium atom can be more powerful in increasing the first hyperpolarizabilities of M-Ï dimer. For M3O-Ï dimer, they have structural isomers, LiO3-BC25H18 (1A, 1B), NaO3-BC25H18 (2A, 3B), KO3-BC25H18 (3A, 3B). Compared with M-BC25H18 (Mâ¯=â¯Li, Na, K), M3O-BC25H18 (Mâ¯=â¯Li, Na, K) exhibit a comparable electronic stability except 2A and 3A. Furthermore, introducing superalkali unit M3O as the electron source can lead to larger nonlinear optical response. The results show that M3O-Ï dimer exhibit the larger first hyperpolarizability (1616-11,902â¯au). Therefore, M3O-Ï dimer are expected to be potential candidates for NLO materials. We hope that this study could provide a new idea for designing nonlinear optical materials using diradical Ï dimer.
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Authors
Yao-Dong Song, Liang Wang, Qian-Ting Wang,