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首页> 外文期刊>Journal of molecular graphics & modelling >Enhancement of second-order nonlinear optical response in boron nitride nanocone: Li-doped effect
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Enhancement of second-order nonlinear optical response in boron nitride nanocone: Li-doped effect

机译:氮化硼纳米锥中二阶非线性光学响应的​​增强:掺锂效应

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The unusual properties of Li-doped boron nitride nanomaterials have been paid further attention due to their wide applications in many promising fields. Here, density functional theory (DFT) calculations have been carried out to investigate the second-order nonlinear optical (NLO) properties of boron nitride nanocone (BNNC) and its Li-doped BNNC derivatives. The natural bond orbital charge, electron location function, localized orbital locator and frontier molecular orbital analysis offer further insights into the electron density of the Li-doped BNNC derivatives. The electron density is effectively bounded by the Li atom and its neighboring B atoms. The Li-doped BNNC molecules exhibit large static first hyperpolarizabilities (B_(tot)) up to 1.19 × 10~3 a.u. for Li@2N-BNNC, 5.05 × 10~3 a.u. for Li@2B-BNNC, and 1.08 × 10~3 a.u. for Li@BN-BNNC, which are significantly larger than that of the non-doped BNNC (1.07 × 10~2 a.u.). The further investigations show that there are clearly dependencies of the first hyperpolarizabilities on the transition energies and oscillator strengths. Moreover, time-dependent DFT results show that the charge transfer from BNNC to Li atom becomes more pronounced as doping the Li atom to BNNC. It is also found that the frequency-dependent effect on the first hyperpolarizabilities is weak, which may be beneficial to experimentalists for designing Li-doped BNNC molecules with large NLO responses.
机译:由于掺杂锂的氮化硼纳米材料在许多有前途的领域中得到广泛的应用,因此其非同寻常的性能受到了越来越多的关注。在这里,已经进行了密度泛函理论(DFT)计算,以研究氮化硼纳米锥(BNNC)及其掺Li的BNNC衍生物的二阶非线性光学(NLO)特性。天然键轨道电荷,电子定位功能,局部轨道定位器和前沿分子轨道分析为掺杂Li的BNNC衍生物的电子密度提供了进一步的见解。电子密度有效地由Li原子及其相邻的B原子限制。掺锂的BNNC分子表现出高达1.19×10〜3 a.u的较大的静态第一超极化率(B_(tot))。对于Li @ 2N-BNNC,5.05×10〜3 a.u. Li @ 2B-BNNC适用于1.08×10〜3 a.u. Li @ BN-BNNC的含量显着大于未掺杂的BNNC(1.07×10〜2 a.u.)。进一步的研究表明,第一超极化率显然与跃迁能和振荡器强度有关。此外,随时间变化的DFT结果表明,从BNNC到Li原子的电荷转移随着将Li原子掺杂到BNNC而变得更加明显。还发现对第一超极化率的频率依赖性作用是微弱的,这对于设计具有大的NLO响应的掺Li的BNNC分子的实验者可能是有益的。

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