Coherent quantum transport in hybrid Nb-InGaAs-Nb Josephson junctions

ORAL

Abstract

Because of the recently reported detection of Majorana fermions states at the superconductor-semiconductor (S-Sm) interface in InAs nanowire devices, the study of hybrid structures has received renewed interest. In this paper we present experimental results on proximity induced superconductivity in a high-mobility two-dimensional electron gas in InGaAs heterostructures. Eight symmetric S-Sm-S Josephson junctions were fabricated on a single InGaAs chip and each junction was measured individually using a lock-in measurement technique. The superconducting electrodes were made of Niobium (Nb). The measurements were carried out in a dilution fridge with a base temperature of 40 mK, and the quantum transport of junctions were measured below 800 mK. Owing to Andreev reflections at the S-Sm interfaces, the differential resistance (\textit{dV/dI}) versus $V$ curve shows the well-known subharmonic energy gap structure (SGS) at $V=$2$\Delta_{\mathrm{Nb}}$/\textit{ne}. The SGS features suppressed significantly with increasing temperature and magnetic field, leading to a shift of the SGSs toward zero bias. Our result paves the way for development of highly transparent hybrid S-Sm-S junctions and coherent circuits for quantum devices capable of performing quantum logic and processing functions.

Authors

  • Kaveh Delfanazari

    • University of Cambridge
    • Electrical Engineering Division, and Cavendish Laboratory, University of Cambridge, UK
  • R. Puddy

    • University of Cambridge, UK
  • P. Ma

    • University of Cambridge, UK
  • M. Cao

    • University of Cambridge, UK
  • T. Yi

    • University of Cambridge, UK
  • Y. Gul

    • University College London (UCL), UK
  • I. Farrer

    • University of Sheffield, UK
  • D. Ritchie

    • University of Cambridge, UK
  • H. Joyce

    • University of Cambridge, UK
  • M. Kelly

    • University of Cambridge, UK
  • C. Smith

    • University of Cambridge, UK