Influence of a Non-Resonant Intense Laser and Structural Defect on the Electronic and Optical Properties of a GaAs Quantum Ring under Inversely Quadratic Potential

IF 1.9 Q3 PHYSICS, CONDENSED MATTER Condensed Matter Pub Date : 2023-06-15 DOI:10.3390/condmat8020052
José C. León-González, Rafael G. Toscano-Negrette, J. A. Vinasco, Á. Morales, M. Mora-Ramos, C. Duque
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Abstract

We investigated the impact of a non-resonant intense laser, structural defects, and magnetic fields on the electronic and optical properties of a simple GaAs quantum ring under the inverse quadratic Hellmann potential, using the effective mass and parabolic band approximations. We obtained the energies and wavefunctions by solving the 2D Schrodinger’s equation using the finite-element numerical technique to analyze this. We considered circular polarization to calculate the dipole matrix elements, which were influenced by the laser field and structural defects in the system. This enabled us to study the linear absorption coefficients. Our results demonstrated that the presence of a laser field and a structural defect disrupt the axial symmetry of the problem. When only the non-resonant laser was present, a pattern of excited states appeared in pairs, which oscillated with the magnetic field. However, the amplitude of the oscillation decreased as the magnetic field strength increased, and these oscillations disappeared when the structural defect was introduced. It was also noted that the intensity and position of the linear optical absorption peaks exhibited a non-monotonic behavior with the magnetic field in the absence of a structural defect. However, this behavior changed when the structural defect was present, depending on the type of polarization (right or left circular). Finally, a clear improvement in the absorption peaks with an increase in the laser parameter is reported.
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非共振强激光和结构缺陷对逆二次势下砷化镓量子环电子光学性质的影响
我们使用有效质量和抛物线带近似,研究了在反二次Hellmann势下,非共振强激光、结构缺陷和磁场对简单GaAs量子环的电子和光学性质的影响。我们利用有限元数值技术求解二维薛定谔方程,得到了能量和波函数。我们考虑了圆偏振来计算偶极矩阵元,它们受到激光场和系统中结构缺陷的影响。这使我们能够研究线性吸收系数。我们的结果表明,激光场和结构缺陷的存在破坏了问题的轴对称性。当只有非共振激光存在时,激发态成对出现,随磁场振荡。然而,振荡的振幅随着磁场强度的增加而减小,并且当引入结构缺陷时,这些振荡消失。还注意到,在没有结构缺陷的情况下,线性光学吸收峰的强度和位置表现出随磁场的非单调行为。然而,当存在结构缺陷时,这种行为发生了变化,这取决于极化的类型(右侧或左侧圆形)。最后,报道了随着激光参数的增加,吸收峰的明显改善。
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来源期刊
Condensed Matter
Condensed Matter PHYSICS, CONDENSED MATTER-
CiteScore
2.90
自引率
11.80%
发文量
58
审稿时长
10 weeks
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