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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Spin orbit interaction fingerprints of a ballistic graphene Josephson junction
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Spin orbit interaction fingerprints of a ballistic graphene Josephson junction

机译:弹性轨道互动指纹弹道石墨烯Josephson交界处

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In this study, we establish the universal characteristics of the contributions of the Rashba spin orbit interaction (RSOI) and the Dresselhaus spin orbit interaction (DSOI) to the supercurrent in a graphene Josephson junction. The most striking property of the skewness and the critical supercurrent, so far not unequivocally revealed, is the presence of a maximum value or a single singularity at the key point (the DSOI equates to half of the RSOI) in pristine case. This is in sharp contrast to that in conventional Josephson junction (the pi junction) and its counterpart in heavily doped graphene case (monotonically decay). Using a general delta potential model, we determine the barrier effect on the quasilocalized Andreev level (p periodic) and the propagating Andreev mode (pi/2 periodic). Moreover, we trace the pronounced critical supercurrent Fabry-Perot oscillations patterns as a function of the doping level, and find that it shows a good qualitative agreement with the recent experiment of M. Ben Shalom et al. [Nat. Phys. 12, 318 (2016)]. Our results show that definitive signatures of specular Andreev reflection can be observed in the graphene material and suggest that the graphene Josephson junction can lead to a new possible application in quantum computing. (C) 2017 Elsevier Ltd. All rights reserved.
机译:在这项研究中,我们建立了Rashba旋转轨道相互作用(RSOI)和Temselhaus旋转轨道相互作用(DSOI)在石墨烯JosephseNonction中的超级电流的普遍特征。偏斜性和临界超级电流的最引人注目的性质,到目前为止没有明显地揭示,是在原始情况下存在最大值或单个奇点(DSOI等于RSOI的一半)。这与传统的JosephseN结较鲜明对比(PI结)及其在重掺杂石墨烯案例中的对应物(单调衰减)。使用通用Δ潜在模型,我们确定对Quasilocalized AndreeV水平(P周期性)和传播和reev模式(PI / 2周期性)的阻挡效果。此外,我们追踪明显的关键超电流法布林 - 珀罗振荡模式作为掺杂水平的函数,并发现它与最近的M. Ben Shalom等人的实验表明了良好的定性协议。 [NAT。物理。 12,318(2016)]。我们的研究结果表明,可以在石墨烯材料中观察到镜面和细纹反射的最终签名,并表明石墨烯Josephson结可以导致量子计算中的新可能应用。 (c)2017 Elsevier Ltd.保留所有权利。

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