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在混合超导-半导体纳米结构中自旋分辨的 Andreev 能级和宇称交叉。

Spin-resolved Andreev levels and parity crossings in hybrid superconductor-semiconductor nanostructures.

机构信息

SPSMS, CEA-INAC/UJF-Grenoble 1, 17 rue des Martyrs, 38054 Grenoble Cedex 9, France.

Harvard University, Department of Chemistry and Chemical Biology, Cambridge, Massachusetts 02138, USA.

出版信息

Nat Nanotechnol. 2014 Jan;9(1):79-84. doi: 10.1038/nnano.2013.267. Epub 2013 Dec 15.

Abstract

The physics and operating principles of hybrid superconductor-semiconductor devices rest ultimately on the magnetic properties of their elementary subgap excitations, usually called Andreev levels. Here we report a direct measurement of the Zeeman effect on the Andreev levels of a semiconductor quantum dot with large electron g-factor, strongly coupled to a conventional superconductor with a large critical magnetic field. This material combination allows spin degeneracy to be lifted without destroying superconductivity. We show that a spin-split Andreev level crossing the Fermi energy results in a quantum phase transition to a spin-polarized state, which implies a change in the fermionic parity of the system. This crossing manifests itself as a zero-bias conductance anomaly at finite magnetic field with properties that resemble those expected for Majorana modes in a topological superconductor. Although this resemblance is understood without evoking topological superconductivity, the observed parity transitions could be regarded as precursors of Majorana modes in the long-wire limit.

摘要

混合超导-半导体器件的物理和工作原理最终取决于其基本亚带隙激发的磁性质,通常称为安德烈夫能级。在这里,我们报告了对与大临界磁场的传统超导体强耦合的大电子 g 因子半导体量子点的安德烈夫能级的塞曼效应的直接测量。这种材料组合允许在不破坏超导性的情况下消除自旋简并。我们表明,穿过费米能的自旋分裂安德烈夫能级会导致量子相变到自旋极化态,这意味着系统的费米子奇偶性发生变化。这种交叉表现为有限磁场下的零偏置电导异常,其性质类似于拓扑超导体中马约拉纳模式的预期特性。尽管这种相似性在不涉及拓扑超导性的情况下可以理解,但观察到的奇偶转变可以被视为长丝极限中马约拉纳模式的前兆。

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