平行耦合双量子点系统中的电子相关:精确分析方法

IF 2.3 3区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
Haroon , M.A.H. Ahsan
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引用次数: 0

摘要

在每个粒子和自旋子空间中,分析得到了在零带宽极限下与非相互作用导线相连的平行耦合双量子点(实际上是四量子点)的精确特征状态。半填充系统的基态是在二十维希尔伯特空间的四维子空间内确定的。分析了量子点能级、点间隧道、点上和点间库仑相互作用等可调参数对自旋-自旋相关性和点占位的影响。在点间隧道和点上库仑相互作用所定义的参数空间中,隧道耦合点同时表现出铁磁和反铁磁相关性,这表明它们适合用于量子计算中的单三重量子比特。点间隧道对点上库仑相互作用的临界依赖性导致随着点间隧道的增加,相关性从铁磁性过渡到反铁磁性。通过引线的间接交换,即使没有点间隧道,这些相关性也会持续存在,而点间库仑相互作用会对这种依赖性产生重大影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electronic correlations in parallel-coupled double quantum dot system: An exact analytical approach
Exact eigenstates of the parallel coupled double quantum dots attached to the non-interacting leads taken in the zero-bandwidth limit (effectively quadruple quantum dots) are analytically obtained in each particle and spin subspace. The ground state of the half-filled system is determined within a four-dimensional subspace of the twenty-dimensional Hilbert space. The effects of tunable parameters, such as quantum dot energy levels, interdot tunneling, ondot and interdot Coulomb interactions, on spin-spin correlation and dot occupancies are analyzed. In the parameter space defined by interdot tunneling and ondot Coulomb interaction, the tunnel-coupled dots exhibit both ferromagnetic and antiferromagnetic correlations, suggesting suitability for singlet-triplet qubits in quantum computing. A critical dependency of interdot tunneling on ondot Coulomb interaction leads to a transition from ferromagnetic to antiferromagnetic correlation as interdot tunneling increases. These correlations persist even without interdot tunneling via indirect exchange through the leads, with the interdot Coulomb interaction significantly influencing this dependency.
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来源期刊
Physics Letters A
Physics Letters A 物理-物理:综合
CiteScore
5.10
自引率
3.80%
发文量
493
审稿时长
30 days
期刊介绍: Physics Letters A offers an exciting publication outlet for novel and frontier physics. It encourages the submission of new research on: condensed matter physics, theoretical physics, nonlinear science, statistical physics, mathematical and computational physics, general and cross-disciplinary physics (including foundations), atomic, molecular and cluster physics, plasma and fluid physics, optical physics, biological physics and nanoscience. No articles on High Energy and Nuclear Physics are published in Physics Letters A. The journal''s high standard and wide dissemination ensures a broad readership amongst the physics community. Rapid publication times and flexible length restrictions give Physics Letters A the edge over other journals in the field.
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