Second Harmonic Generation in Lithiated Silicon Nanowires: Derivations and Computational Methods

Donald C. Boone
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Abstract

This research will examine the computational methods to calculate the nonlinear optical process of second harmonic generation (SHG) that will be hypothesized to be present during lithium ion insertion into silicon nanowires. First it will be determined whether the medium in which SHG is conveyed is non-centrosymmetric or whether the medium is inversion symmetric where SHG as a part of the second-order nonlinear optical phenomenon does not exist. It will be demonstrated that the main interaction that determines SHG is multiphoton absorption on lithium ions. The quantum harmonic oscillator (QHO) is used as the background that generates coherent states for electrons and photons that transverse the length of the silicon nanowire. The matrix elements of the Hamiltonian which represents the energy of the system will be used to calculate the probability density of second-order nonlinear optical interactions which includes collectively SHG, sum-frequency generation (SFG) and difference-frequency generation (DFG). As a result it will be seen that at varies concentrations of lithium ions (Li+) within the crystallized silicon (c-Si) matrix the second-order nonlinear optical process has probabilities substantial enough to create second harmonic generation that could possibly be used for such applications as second harmonic imaging microscopy.
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锂化硅纳米线二次谐波的产生:推导和计算方法
本研究将研究计算二次谐波产生(SHG)非线性光学过程的计算方法,该非线性光学过程将被假设存在于锂离子插入硅纳米线过程中。首先要确定传递SHG的介质是非中心对称的,还是逆对称的,其中SHG作为二阶非线性光学现象的一部分不存在。将证明决定SHG的主要相互作用是锂离子上的多光子吸收。量子谐振子(QHO)被用作背景,使电子和光子在硅纳米线的长度上产生相干态。表示系统能量的哈密顿量的矩阵元素将用于计算二阶非线性光相互作用的概率密度,这些相互作用包括SHG,和频产生(SFG)和差频产生(DFG)。因此,我们可以看到,在不同浓度的锂离子(Li+)晶体硅(c-Si)矩阵中,二阶非线性光学过程有足够的概率产生二次谐波,可能用于二次谐波成像显微镜等应用。
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