石墨烯量子霍尔边的 SU(4) 对称破缺和诱导超导性

IF 3.7 2区 物理与天体物理 Q1 Physics and Astronomy Physical Review B Pub Date : 2024-07-25 DOI:10.1103/physrevb.110.024518
Joseph J. Cuozzo, Enrico Rossi
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引用次数: 0

摘要

在石墨烯中,与量子霍尔(QH)制度中的自旋和谷自由度相关的近似 SU(4) 对称性反映在石墨烯的朗道水平(LLs)的四倍退化性中。相互作用和泽曼效应打破了这种近似对称性,并解除了 LLs 的相应退化性。我们研究了近似 SU(4) 对称性的打破如何影响靠近超导体的石墨烯 QH 边缘模式的特性。我们展示了四重退变性的解除是如何定性地改变 QH-超导体异质结的传输特性的。对于零 LL,通过将边缘模式置于超导体附近,原则上可以实现在足够强的泽曼场存在下支持马约拉纳斯的一维拓扑超导体。我们估算了这种拓扑超导体的拓扑间隙,并将其与 QH 超导体界面的特性联系起来。
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SU(4) symmetry breaking and induced superconductivity in graphene quantum Hall edges
In graphene, the approximate SU(4) symmetry associated with the spin and valley degrees of freedom in the quantum Hall (QH) regime is reflected in the fourfold degeneracy of graphene's Landau levels (LLs). Interactions and the Zeeman effect break such approximate symmetry and lift the corresponding degeneracy of the LLs. We study how the breaking of the approximate SU(4) symmetry affects the properties of graphene's QH edge modes located in proximity to a superconductor. We show how the lifting of the fourfold degeneracy qualitatively modifies the transport properties of the QH-superconductor heterojunction. For the zero LL, by placing the edge modes in proximity to a superconductor, it is, in principle, possible to realize a 1D topological superconductor supporting Majoranas in the presence of sufficiently strong Zeeman field. We estimate the topological gap of such a topological superconductor and relate it to the properties of the QH-superconductor interface.
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来源期刊
Physical Review B
Physical Review B 物理-物理:凝聚态物理
CiteScore
6.70
自引率
32.40%
发文量
0
审稿时长
3.0 months
期刊介绍: Physical Review B (PRB) is the world’s largest dedicated physics journal, publishing approximately 100 new, high-quality papers each week. The most highly cited journal in condensed matter physics, PRB provides outstanding depth and breadth of coverage, combined with unrivaled context and background for ongoing research by scientists worldwide. PRB covers the full range of condensed matter, materials physics, and related subfields, including: -Structure and phase transitions -Ferroelectrics and multiferroics -Disordered systems and alloys -Magnetism -Superconductivity -Electronic structure, photonics, and metamaterials -Semiconductors and mesoscopic systems -Surfaces, nanoscience, and two-dimensional materials -Topological states of matter
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