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电荷转移与第一超极化率:笼状自由基C59X及锂包封的Li@C59X(X = B,N)

Charge transfer and first hyperpolarizability: cage-like radicals C59X and lithium encapsulated Li@C59X (X=B, N).

作者信息

Gao Feng-Wei, Zhong Rong-Lin, Sun Shi-Ling, Xu Hong-Liang, Zhao Liang, Su Zhong-Min

机构信息

Institute of Functional Material Chemistry, Department of Chemistry, Northeast Normal University, Changchun, 130024, China.

出版信息

J Mol Model. 2015 Oct;21(10):258. doi: 10.1007/s00894-015-2808-9. Epub 2015 Sep 14.

Abstract

Very recently, two new cage-like radicals (C59B and C59N) formed by a boron or nitrogen atom substituting one carbon atom of C60 were synthesized and characterized. In order to explore the structure-property relationships of combination the cage-like radical and alkali metal, the endohedral Li@C59B and Li@C59N are designed by lithium (Li) atom encapsulated into the cage-like radicals C59B and C59N. Further, the structures, natural bond orbital (NBO) charges, and nonlinear optical (NLO) responses of C59B, C59N, Li@C59B, and Li@C59N were investigated by quantum chemical method. Three density functional methods (BHandHLYP, CAM-B3LYP, and M05-2X) were employed to estimate their first hyperpolarizabilities (β tot) and obtained the same trend in the β tot value. The β tot values by BHandHLYP functional of the pure cage-like radicals C59B (1.30 × 10(3) au) and C59N (1.70 × 10(3) au) are close to each other. Interestingly, when one Li atom encapsulated into the electron-rich radical C59N, the β tot value of the Li@C59N increases to 2.46 × 10(3) au. However, when one Li atom encapsulated into the electron-deficient radical C59B, the β tot value of the Li@C59B sharply decreases to 1.54 × 10(2) au. The natural bond orbital analysis indicates that the encapsulated Li atom leads to an obvious charge transfer and valence electrons distribution plays a significant role in the β tot value. Further, frontier molecular orbital explains that the interesting charge transfer between the encapsulated Li atom and cage-like radicals (C59B and C59N) leads to differences in the β tot value. It is our expectation that this work will provide useful information for the design of high-performance NLO materials.

摘要

最近,人们合成并表征了两种由硼或氮原子取代C60中的一个碳原子形成的新型笼状自由基(C59B和C59N)。为了探索笼状自由基与碱金属结合的结构-性质关系,通过将锂(Li)原子封装到笼状自由基C59B和C59N中,设计了内包合物Li@C59B和Li@C59N。此外,采用量子化学方法研究了C59B、C59N、Li@C59B和Li@C59N的结构、自然键轨道(NBO)电荷和非线性光学(NLO)响应。采用三种密度泛函方法(BHandHLYP、CAM-B3LYP和M05-2X)估算了它们的第一超极化率(βtot),并在βtot值上得到了相同的趋势。纯笼状自由基C59B(1.30×10(3) au)和C59N(1.70×10(3) au)的BHandHLYP泛函βtot值彼此接近。有趣的是,当一个Li原子封装到富电子自由基C59N中时,Li@C59N的βtot值增加到2.46×10(3) au。然而,当一个Li原子封装到缺电子自由基C59B中时,Li@C59B的βtot值急剧下降到1.54×10(2) au。自然键轨道分析表明,封装的Li原子导致明显的电荷转移,价电子分布在βtot值中起重要作用。此外,前线分子轨道解释了封装的Li原子与笼状自由基(C59B和C59N)之间有趣的电荷转移导致了βtot值的差异。我们期望这项工作将为高性能NLO材料的设计提供有用信息。

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