二维韦尔半金属中约瑟夫森超电流的双轴应变效应

IF 1.6 4区 物理与天体物理 Q3 PHYSICS, CONDENSED MATTER
Chunxu Bai, Yanling Yang
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引用次数: 0

摘要

基于韦尔-波哥柳博夫-德-根尼方程,我们研究了二维韦尔半金属约瑟夫森结中双轴应变对约瑟夫森超电流的影响。研究表明,电流相位关系可分别受到横向和纵向应变强度的衰减和非单调调制。当两者同时存在时,亚隙安德烈耶夫束缚水平和由此产生的约瑟夫森超电流对弱链接区的势能和长度以及栅极电压(双轴应变)非常敏感,并且通过移动韦尔节点而增强或减弱超电流,而无需磁性或泽曼项。研究还发现,栅极电压(应变)可导致超级电流开关,其中截止栅极电压取决于弱链接区的势能。研究还探讨了超级电流的温度依赖性,发现随着温度的升高,超级电流会出现单调下降和类对数函数,这是由于亚电隙安德烈耶夫束缚水平的热效应所致。这项研究的发现对于理解二维韦尔半金属中的超导电子学具有重要意义,并为设计具有全电气控制功能的应变可调量子器件提供了一条新途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Biaxial strain effect on Josephson supercurrent in a 2D Weyl semimetal

Based on the Weyl–Bogoliubov-de Gennes equation, we investigate the impact of biaxial strain on the Josephson supercurrent in a 2D Weyl semimetal Josephson junction, where the biaxial strain is induced by a piezoelectric film. It is shown that the current phase relation can be attenuated and non-monotonically modulated by the transverse and the longitudinal strain strength, respectively. When both are present, the subgap Andreev bound levels and the resulting Josephson supercurrent are sensitive to the potential energy and the length in the weak link region and the gate voltage (biaxial strain), and an enhancement or weakening of the supercurrent by shifting the Weyl nodes without requiring a magnetic or Zeeman term is induced. It is also revealed that the gate voltage (strain) can cause a supercurrent switch, where the cutoff gate voltage depends on the potential energy in the weak link region. The research also explores the temperature dependence of the supercurrent, noting a monotonic decrease and a logistic-like function with increasing temperature due to the thermal effect on subgap Andreev bound levels. The findings of this study are significant for the understanding of superconducting electronics in 2D Weyl semimetal and offering a new avenue for designing strain tunable quantum devices with all-electrical control.

Graphical Abstract

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来源期刊
The European Physical Journal B
The European Physical Journal B 物理-物理:凝聚态物理
CiteScore
2.80
自引率
6.20%
发文量
184
审稿时长
5.1 months
期刊介绍: Solid State and Materials; Mesoscopic and Nanoscale Systems; Computational Methods; Statistical and Nonlinear Physics
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