Manipulation of internal blockage in triangular triple quantum dot

IF 1.5 4区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
Yue Qi, 月 齐, Jian-Hua Wei and 建华 魏
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引用次数: 0

Abstract

We utilize the calculation of hierarchical equations of motion to demonstrate that the spin-dependent properties between adjacent quantum dots (QDs) can be changed by breaking the internal symmetry configuration, corresponding to the inversion of dominant chiral states. In the linear triple quantum dots (LTQDs) connected to two electron reservoirs, we can observe that the blockage appears at the triangle triple quantum dots (TTQDs) by gradually increasing the coupling strength between next-nearest double QDs. When the initial coupling between LTQDs has altered, the internal chiral circulation also undergoes the corresponding transform, thus achieving qualitative regulation and detection of the blocking region. We also investigate the response of the chiral circulation to the dot–lead coupling strength, indicating the overall robust chiral circulation of the TTQDs frustration.
操纵三角形三量子点的内部阻塞
我们利用分层运动方程的计算方法证明,相邻量子点(QDs)之间的自旋相关特性可以通过打破内部对称构型来改变,这与主导手性态的反转相对应。在与两个电子贮槽相连的线性三量子点(LTQDs)中,我们可以观察到,通过逐渐增加相邻双量子点之间的耦合强度,在三角形三量子点(TTQDs)处出现了阻塞。当 LTQD 之间的初始耦合发生变化时,内部的手性环流也会发生相应的转变,从而实现对阻塞区域的定性调节和检测。我们还研究了手性环流对点-引线耦合强度的响应,表明 TTQDs 挫折的手性环流总体上是稳健的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Chinese Physics B
Chinese Physics B 物理-物理:综合
CiteScore
2.80
自引率
23.50%
发文量
15667
审稿时长
2.4 months
期刊介绍: Chinese Physics B is an international journal covering the latest developments and achievements in all branches of physics worldwide (with the exception of nuclear physics and physics of elementary particles and fields, which is covered by Chinese Physics C). It publishes original research papers and rapid communications reflecting creative and innovative achievements across the field of physics, as well as review articles covering important accomplishments in the frontiers of physics. Subject coverage includes: Condensed matter physics and the physics of materials Atomic, molecular and optical physics Statistical, nonlinear and soft matter physics Plasma physics Interdisciplinary physics.
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