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首页> 外文期刊>Journal of Molecular Liquids >Theoretical exploration of third-order nonlinear optical properties of black phosphorus quantum dots doped with alkali and alkaline-earth metal atoms
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Theoretical exploration of third-order nonlinear optical properties of black phosphorus quantum dots doped with alkali and alkaline-earth metal atoms

机译:碱金属碱金属原子掺杂黑磷量子点三阶非线性光学性质的理论探索

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The electrical properties and nonlinear optical (NLO) properties of black phosphorus quantum dots (BPQDs) upon doping of alkali and alkaline-earth metal atoms, M@BPQDs (M = Li, Na, K, Be, Mg, and Ca), were systematically investigated based on density functional theory (DFT) method. The results showed that the introduction of metal atoms M could efficiently narrow the wide gap between the highest occupied molecular orbital (HOMO) and the lowest unoccupied molecular orbital (LUMO) of the pristine BPQDs in the range of 2.254-3.098 eV. More importantly, the metal atom M doping can remarkably enhance the second hyperpolarizability (gamma(0)) of BPQDs, due to electron transfer from M to BPQDs. M@BPQDs possess large second hyperpolarizabilities (gamma(0)) in the range of 0.81 x 10(-33)-3.94 x 10(-33) esu, where the alkali-doped complexes are much superior to the alkaline-earth-doped complexes. Furthermore, doping heavier K atom on the large-sized BPQDs can obtain the largest gamma(0) value of 3.94 x 10(-33) esu, which can be understood by its large amplitude distribution of second hyperpolarizability density. Configuration interaction singles (CIS) calculations were performed to get crucial excited states to account for the large gamma(0) values. The second hyperpolarizability trend estimated from the two-level formula and DFT calculations correlates nicely. These metal-doped complexes have the deep-ultraviolet (deep-UV) transparent region at wavelength <= 200 nm, and hence are new deep-UV NLO molecules. These striking results designate such doped BPQDs as excellent candidates for their potential applications in optical devices. (C) 2021 Elsevier B.V. All rights reserved.
机译:黑磷量子点(BPQD)掺杂碱金属和碱土金属原子后的电学性质和非线性光学(NLO)性质,M@BPQDs(M=Li、Na、K、Be、Mg和Ca),基于密度泛函理论(DFT)方法进行了系统研究。结果表明,在2.254-3.098eV范围内,引入金属原子M可以有效地缩小原始BPQD的最高占据分子轨道(HOMO)和最低未占据分子轨道(LUMO)之间的宽间隙。更重要的是,金属原子M掺杂可以显著提高BPQD的第二超极化率(γ(0)),这是由于电子从M转移到BPQD。M@BPQDs在0.81×10(-33)~3.94×10(-33)esu范围内具有较大的第二超极化率(γ(0)),其中碱掺杂配合物远优于碱土掺杂配合物。此外,在大尺寸BPQD上掺杂较重的K原子可以获得最大的γ(0)值3.94 x 10(-33)esu,这可以通过其第二超极化率密度的大振幅分布来理解。进行组态相互作用单态(CI)计算,以获得重要的激发态,从而解释较大的伽马(0)值。由二能级公式和DFT计算估算的第二超极化率趋势很好地相关。这些金属掺杂的配合物在波长<=200 nm处具有深紫外(deep UV)透明区,因此是新的深紫外NLO分子。这些惊人的结果表明,这种掺杂的BPQD是其在光学器件中潜在应用的优秀候选者。(c)2021爱思唯尔B.V.保留所有权利。

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