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Theory of fine structure of correlated exciton states in self-assembled semiconductor quantum dots in a magnetic field

机译:磁场中自组装半导体量子点中相关激子态的精细结构理论

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摘要

A theory of the fine structure of correlated exciton states in self-assembled parabolic semiconductor quantum dots in a magnetic field perpendicular to the quantum dot plane is presented. The correlated exciton wave function is expanded in configurations consisting of products of electron and heavy-hole 2D harmonic oscillator states (HO) in a magnetic field and the electron spin Sz = \ub11/2 and a heavy-hole spin \u3c4z = \ub13/2 states. Analytical expressions for the short- and long-range electron-hole exchange Coulomb interactionmatrix elements are derived in the HO and spin basis for arbitrary magnetic field. This allows the incorporation of short- and long-range electron-hole exchange, direct electron-hole interaction, and quantum dot anisotropy in the exact diagonalization of the exciton Hamiltonian. The fine structure of ground and excited correlated exciton states as a function of a number of confined shells, quantum dot anisotropy, and magnetic field is obtained using exact diagonalization of the many-body Hamiltonian. The effects of correlations are shown to significantly affect the energy splitting of the two bright exciton states.
机译:提出了在垂直于量子点平面的磁场中自组装抛物线型半导体量子点中相关激子态的精细结构的理论。相关激子波函数扩展为由磁场中的电子和重孔2D谐振子状态(HO)乘积和电子自旋Sz = \ ub11 / 2和重孔自旋\ u3c4z = \ ub13构成的构型/ 2个状态。在任意磁场的HO和自旋的基础上,得出了近距离和远距离电子-空穴交换库仑相互作用矩阵元素的解析表达式。这允许在激子哈密顿量的精确对角线化中纳入短距离和长距离电子-空穴交换,直接的电子-空穴相互作用和量子点各向异性。使用多体哈密顿量的精确对角线化,获得了基态和激发态相关激子态的精细结构,该结构是许多受限壳,量子点各向异性和磁场的函数。关联的影响显示为显着影响两个明亮激子态的能量分裂。

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