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首页> 外文期刊>Physica, E. Low-dimensional systems & nanostructures >Anisotropy effect on the nonlinear optical properties of a three-dimensional quantum dot confined at the center of a cylindrical nano-wire
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Anisotropy effect on the nonlinear optical properties of a three-dimensional quantum dot confined at the center of a cylindrical nano-wire

机译:各向异性对局限在圆柱纳米线中心的三维量子点非线性光学特性的影响

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The effect of geometrical anisotropy is numerically investigated on the linear and nonlinear optical properties of a GaAs quantum dot which is located at the center of a Ga_(1-x)AI_xAs cylindrical nano-wire. The finite difference approximation has been used for obtaining energy eigenvalues and corresponding wave functions. Also, the compact density matrix formalism is applied to investigate linear, third order nonlinear and total optical absorption coefficients (ACs) and refractive index (RI) changes. The optical properties and oscillator strength are calculated as a function of the incident photon energy for different ellipsoid aspect ratio, dot radius and incident optical intensity for 1-2,2-3 and 1-3 transitions. The results clearly reveal that the dot anisotropy plays an important role in determining the magnitude of nonlinear AC and RI changes which enable us to adjust saturation condition. We found that the dot anisotropy shifts absorption spectrum towards both lower and higher energies which depend on the shape of dot (spherical, prolate or oblate quantum dot), dot radius and states between which transitions will occur. Additionally, it is shown that the presence of nano-wire (second confinement) causes (I) a large increment in RI changes (II) a decrement in total AC for prolate QDs with respect to the dot radius (III) an increment in third order AC with respect to the ellipsoid aspect ratio and (IV) a blue shift in optical spectrum.
机译:数值研究了几何各向异性对位于Ga_(1-x)Al_xAs圆柱纳米线中心的GaAs量子点的线性和非线性光学性质的影响。有限差分近似已用于获得能量特征值和相应的波函数。同样,将紧凑的密度矩阵形式主义应用于研究线性,三阶非线性和总光吸收系数(ACs)和折射率(RI)的变化。计算光学特性和振荡器强度,作为不同椭圆形长宽比,1-2、2-3和1-3跃迁的点半径和入射光强度的函数。结果清楚地表明,点各向异性在确定非线性AC和RI变化的幅度中起着重要作用,这使我们能够调整饱和条件。我们发现,点各向异性使吸收光谱朝着较低和较高的能量移动,这取决于点的形状(球形,扁长形或扁圆形的量子点),点半径和过渡之间将发生的状态。此外,还表明存在纳米线(第二禁区)会导致(I)RI的较大增量变化(II)质子化QD相对于点半径的总AC减小(III)第三点的增大相对于椭圆形长宽比为AC阶,(IV)光谱中的蓝移。

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