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Transport electron through a quantum wire by side-attached asymmetric quantum-dot rings

机译:通过侧面连接的不对称量子点环将电子传输通过量子线

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The electronic conductance at zero temperature through a quantum wire with side-attached asymmetric quantum ring (as a scatter system) is theoretically studied using the non-interacting Anderson tunneling Hamiltonian method. We show that the asymmetric configuration of QDscatter system strongly impresses the amplitude and spectrum of quantum wire nanostructure transmission characteristics. It is shown that whenever the balanced number of quantum dots in two rings is substituted by unbalanced scheme, the number of forbidden mini-bands in quantum wire conductance increases and QW-nanostructure electronic conductance contains rich spectral properties due to appearance of the new anti-resonance and resonance points in spectrum. Considering the suitable gap between nano-rings can strengthen the amplitude of new resonant peaks in the QW conductance spectrum. The proposed asymmetric quantum ring scatter system idea in this paper opens a new insight on designing quantum wire nano structure for given electronic conductance.
机译:通过非相互作用的安德森隧穿哈密顿量理论研究了零温度下通过带有侧面不对称量子环(作为散射系统)的量子线的电子电导。我们表明,QDscatter系统的不对称配置强烈地影响了量子线纳米结构传输特性的幅度和频谱。结果表明,每当两个环中的平衡量子点被不平衡方案所取代时,量子线电导中禁带的禁带数目就会增加,并且由于新的反电势的出现,QW纳米结构电子电导包含丰富的光谱性质。频谱中的共振点和共振点。考虑纳米环之间的合适间隙可以增强QW电导谱中新的共振峰的幅度。本文提出的非对称量子环散射系统思想为给定电子电导率设计量子线纳米结构开辟了新的见解。

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