IF 17.6 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY
Masahiro Naritsuka, Tadashi Machida, Shun Asano, Youichi Yanase, Tetsuo Hanaguri
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引用次数: 0

摘要

超导性是非难量子现象和装置的基础,但它们往往需要人为控制超导间隙。在现实空间中,有多种方法可以调整超导间隙,例如引入界面和缺陷。然而,在动量空间中操纵超导间隙却具有挑战性。在这里,我们证明了石墨烯上 NbSe2 单层的超导间隙可以通过改变层与层之间的扭转角在特定时刻进行改变。我们基于光谱成像的扫描隧穿显微镜实验揭示了相对于 NbSe2 和石墨烯晶格扭曲的 Bogoliubov 准粒子的干涉图案。我们发现,这些手性干涉图案源于 NbSe2 单层和石墨烯费米面重叠的动量空间中与扭转有关的六组区域。这一发现不仅拓宽了我们对扭曲双层体系超导性的理解,而且为设计具有可调特性的人工超导材料和器件提供了可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Superconductivity controlled by twist angle in monolayer NbSe2 on graphene

Superconductivity controlled by twist angle in monolayer NbSe2 on graphene

Superconductivity serves as a basis for non-trivial quantum phenomena and devices, but they often require artificial control of the superconducting gap. In real space, there are various ways to tailor the superconducting gap, such as by introducing interfaces and defects. However, it is challenging to manipulate the superconducting gap in momentum space. Here we demonstrate that the superconducting gap of NbSe2 monolayers on graphene can be modified at specific momenta by changing the twist angle between the layers. Our spectroscopic-imaging-based scanning tunnelling microscopy experiments reveal the interference patterns of Bogoliubov quasiparticles that are twisted with respect to NbSe2 and graphene lattices. We find that these chiral interference patterns originate from the twist-dependent sextet of regions in momentum space in which the Fermi surfaces of the NbSe2 monolayer and graphene overlap. This finding not only broadens our understanding of superconductivity in twisted bilayer systems but also opens up possibilities for designing artificial superconducting materials and devices with tunable properties.

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来源期刊
Nature Physics
Nature Physics 物理-物理:综合
CiteScore
30.40
自引率
2.00%
发文量
349
审稿时长
4-8 weeks
期刊介绍: Nature Physics is dedicated to publishing top-tier original research in physics with a fair and rigorous review process. It provides high visibility and access to a broad readership, maintaining high standards in copy editing and production, ensuring rapid publication, and maintaining independence from academic societies and other vested interests. The journal presents two main research paper formats: Letters and Articles. Alongside primary research, Nature Physics serves as a central source for valuable information within the physics community through Review Articles, News & Views, Research Highlights covering crucial developments across the physics literature, Commentaries, Book Reviews, and Correspondence.
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