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Role of interactions in electronic structure of a two-electron quantum dot molecule

机译:相互作用在双电子量子点分子的电子结构中的作用

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We have studied a two-electron quantum dot molecule in a magnetic field. The electron interaction is treated accurately by the direct diagonalization of the Hamiltonian matrix. We calculate two lowest energy levels of the two-electron quantum dot molecule in a magnetic field. Our results show that the electron interactions are significant, as they can change the total spin of the two-electron ground state of the system by adjusting the magnetic field between S = 0 and S = 1. The energy difference DeltaE between the lowest S = 0 and S = 1 states is shown as a function of the axial magnetic field. We found that the energy difference between the lowest S = 0 and S = 1 states in the strong-B S = 0 state varies linearly. Our results provide a possible realization for a qubit to be fabricated by current growth techniques.
机译:我们已经研究了磁场中的双电子量子点分子。电子相互作用通过哈密顿矩阵的直接对角化来精确处理。我们计算了磁场中双电子量子点分子的两个最低能级。我们的结果表明,电子相互作用是显着的,因为它们可以通过调节S = 0和S = 1之间的磁场来改变系统双电子基态的总自旋。最低的S = 0和S = 1状态显示为轴向磁场的函数。我们发现在强B S = 0状态下,最低S = 0和S = 1状态之间的能量差线性变化。我们的结果为通过当前的增长技术制造量子比特提供了可能的实现。

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