论文标题

邻近石墨烯中的超导迪拉克点

Superconducting Dirac point in proximetized graphene

论文作者

Daptary, Gopi Nath, Walach, Eyal, Shimshoni, Efrat, Frydman, Aviad

论文摘要

自从发现石墨烯的突破性发现以来,由单个原子层组成的二维(2D)材料引起了广泛的研究兴趣。这种系统的一个主要优势是简单的能力,可以通过后门构元来调整化学电位,原则上可以通过电荷中立点改变费米水平,从而在电子和孔掺杂之间调整。对于2D超导体,这意味着一个人可能会实现由小玻色子紧密结合的电子对的Bose Einstein凝结物理学描述的强耦合超导体。此外,应该可以在单个系统中访问电子和基于孔的超导性。但是,在大多数二维材料中,绝缘间隙都在电荷中立点围绕,从而阻止了对此制度的方法。在这种意义上,石墨烯是独特的,因为它是一个真正的半金属,其中未开发的狄拉克点受对称的保护。在这项工作中,我们表明单层石墨烯,其中超导配对是通过与低密度超导体区域的接近度引起的,可以通过强耦合方案从孔到电子超导性。我们在实验和理论上研究了这个“超导越野点”的附近,并找到了一种异常情况,在该情况下,石墨烯内正常和超导区域之间接口的反射,抑制电导率,同时抑制Andreev反射的较大相位破裂长度。此外,可以调整费米水平,以便在正常和超导状态下的动量完美匹配,从而产生理想的Andreev反射过程。

Two-dimensional (2D) materials, composed of single atomic layers, have attracted vast research interest since the breakthrough discovery of graphene. One major benefit of such systems is the simple ability to tune the chemical potential by back-gating, in-principle enabling to vary the Fermi level through the charge neutrality point, thus tuning between electron and hole doping. For 2D Superconductors, this means that one may potentially achieve the strongly-coupled superconducting regime described by Bose Einstein Condensation physics of small bosonic tightly bound electron pairs. Furthermore, it should be possible to access both electron and hole based superconductivity in a single system. However, in most 2D materials, an insulating gap opens up around the charge neutrality point, thus preventing approach to this regime. Graphene is unique in this sense since it is a true semi-metal in which the un-gapped Dirac point is protected by the symmetries. In this work we show that single layer graphene, in which superconducting pairing is induced by proximity to regions of a low density superconductor, can be tuned from hole to electron superconductivity through the strong coupling regime. We study, both experimentally and theoretically, the vicinity of this "Superconducting Dirac point" and find an unusual situation where reflections at interfaces between normal and superconducting regions within the graphene, suppress the conductance and, at the same time, Andreev reflections maintain a large phase breaking length. In addition, the Fermi level can be adjusted so that the momentum in the normal and superconducting regimes perfectly match giving rise to ideal Andreev reflection processes.

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