电场对量子点-量子环半导体纳米结构中电子光量子跃迁的影响

I. Hnidko, Vasyl Gutsul, Ivan Koziarskyi, Oleksandr Makhanets
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摘要

在有效质量和矩形势模型中,从理论上研究了均匀电场对半导体(GaAs/AlxGa1-xAs)量子点-量子环纳米结构能带内量子跃迁能谱、电子波函数和振子强度的影响。在电场存在下,准粒子的稳态Schrödinger方程不能解析求解。对于未知波函数的近似解,以在一组完整的圆柱对称波函数上展开的形式寻求,并从相应的长期方程的解中找到电子能量。结果表明,电场对多层纳米结构中电子的定位有显著影响。在这种情况下,带内量子跃迁的电子能量和振子的强度都非单调地依赖于电场强度的大小。
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Influence of electric field on electronic optical quantum transitions in a quantum dot - quantum ring semiconductor nanostructure
In the model of effective masses and rectangular potentials, the influence of a homogeneous electric field on the energy spectrum, electron wave functions, and oscillator strengths of intraband quantum transitions in a semiconductor (GaAs/AlxGa1-xAs) quantum dot-quantum ring nanostructure is theoretically investigated. In the presence of an electric field, the stationary Schrödinger equations for quasiparticles are not analytically solved. For their approximate solution, the unknown wave functions are sought in the form of an expansion over a complete set of cylindrically symmetric wave functions, and the electron energy is found from the solution of the corresponding secular equation. It is shown that the electric field significantly affects the localization of the electron in the multilayer nanostructure. In this case, both the electron energy and the strength of the oscillators of intraband quantum transitions depend nonmonotonically on the magnitude of the electric field strength.
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