Journal article
Detecting Majorana modes in one-dimensional wires by charge sensing
Physical Review B, Vol.91(4), 045403
05/Jan/2015
Abstract
The electron number parity of the ground state of a semiconductor nanowire proximity coupled to a bulk superconductor can alternate between the quantized values +/- 1 if parameters such as the wire length L, the chemical potential mu, or the magnetic field B are varied inside the topological superconductor phase. The parity jumps, which may be interpreted as changes in the occupancy of the fermion state formed from the pair of Majorana modes at opposite ends of the wire, are accompanied by jumps delta N in the charge of the nanowire, whose values decrease exponentially with the wire length. We study theoretically the dependence of delta N on system parameters, and compare the locations in the mu-B plane of parity jumps when the nanowire is or is not proximity coupled to a bulk superconductor. We show that, despite the fact that the wave functions of the Majorana modes are localized near the two ends of the wire, the charge-density jumps have spatial distributions that are essentially uniform along the wire length, being proportional to the product of the two Majorana wave functions. We explain how charge measurements, say by an external single-electron transistor, could reveal these effects. Whereas existing experimental methods require direct contact to the wire for tunneling measurements, charge sensing avoids this issue and provides an orthogonal measurement to confirm recent experimental developments. Furthermore, by comparing density of states measurements which show Majorana features at the wire ends with the uniformly distributed charge measurements, one can rule out alternative explanations for earlier results. We shed light on a parameter regime for these wire-superconductor hybrid systems, and propose a related experiment to measure spin density.
Details
- Title
- Detecting Majorana modes in one-dimensional wires by charge sensing
- Creators
- Gilad Ben-Shach (null) - Harvard UniversityArbel Haim (null) - 972WIS_INST___90Ian Appelbaum (null) - University of Maryland, College ParkYuval Oreg (null) - 972WIS_INST___90Amir Yacoby (null) - Harvard UniversityBertrand I. Halperin (null) - Harvard University
- Resource Type
- Journal article
- Publication Details
- Physical Review B, Vol.91(4), 045403; 05/Jan/2015
- Number of pages
- 11
- Language
- English
- DOI
- https://doi.org/10.1103/PhysRevB.91.045403
- Grant note
- Microsoft Corporation; National Science Foundation [DMR-1206016]; STC Center for Integrated Quantum Materials [DMR-1231319]; NSERC; WIS-TAMU; Israel Science Foundation, Minerva; ERC [340210]. We thank A. Akhmerov, E. Berg, D. Chowdhury, K. Flensberg, G. Gervais, S. Hart, C. R. Laumann, C. Marcus, and J. D. Sau for useful discussions. This work was supported in part by the Microsoft Corporation and by the National Science Foundation through Grant No. DMR-1206016 and the STC Center for Integrated Quantum Materials, Grant No. DMR-1231319. G.B. was supported in part by NSERC. Work at WIS received support from WIS-TAMU, the Israel Science Foundation, Minerva and ERC (FP7/2007-2013) 340210 grants._ALMAME_DELIMITER_
- Record Identifier
- 993263297603596
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