Published January 25, 2024 | Version v1
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Quantized conductance in hybrid split-gate arrays of superconducting quantum point contacts with semiconducting two-dimensional electron systems

  • 1. Electronics and Nanoscale Engineering Division, James Watt School of Engineering, University of Glasgow, Glasgow, G12 8QQ, United Kingdom
  • 2. Electrical Engineering Division, Engineering Department, University of Cambridge, Cambridge, CB3 0FA, United Kingdom
  • 3. Department of Physics, Cavendish Laboratory, University of Cambridge, Cambridge, CB3 0HE, United Kingdom
  • 4. Department of Electronic and Electrical Engineering, University of Sheffield, Mappin Street, Sheffield, S1 3JD, United Kingdom
  • 5. Department of Materials Science & Metallurgy, University of Cambridge, Cambridge, CB3 0FS, United Kingdom
  • 6. Department of Physics, Nagoya University, Furo-cho, Chikusa-ku, Nagoya, 464-8602, Japan
  • 7. IFISC (UIB-CSIC) and Physics Department, University of the Balearic Islands, 07122 Palma, Spain

Description

A quantum point contact (QPC)—a constriction in a semiconducting two-dimensional electron system with a quantized conductance—is a building block of novel spintronic and topological electronic circuits. QPCs can also be used as readout electronics, charge sensors, or switches in quantum nanocircuits. A short and impurity-free constriction with superconducting contacts is a Cooper-pair QPC analogue known as a superconducting quantum point contact (SQPC). The technological development of such quantum devices has been prolonged due to the challenges of maintaining their geometrical requirement and near-unity superconductor-semiconductor interface transparency. Here, we develop advanced nanofabrication, material and device engineering techniques and report on an innovative realization of nanoscale hybrid SQPC arrays with split gate technology in semiconducting 2D electron systems. We exploit the special gate tunability of the quantum wells, and demonstrate the first experimental observation of conductance quantization in hybrid InGaAs-Nb SQPCs. We observe reproducible quantized conductance at zero magnetic fields in multiple quantum nanodevices fabricated in a single chip and systematically investigate the quantum transport of SQPCs at low and high magnetic fields for their potential applications in quantum metrology, for extremely accurate voltage standards, and fault-tolerant quantum technologies.

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10.1103_PhysRevApplied.21.014051.pdf

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Additional details

Identifiers

DOI
10.1103/PhysRevApplied.21.014051;
Crossref Funder ID
10.13039/501100001695;

Publishing Information

Journal Title
Physical Review Applied
Journal Volume
21
Journal Issue
1
Journal Page Range
10 pgs.
ISSN
2331-7019

Optional Information

Contract/Grant/Project number
JPMJFR212V
Notes
Contact Email: kaveh.delfanazari@glasgow.ac.uk; Record automatically processed
Funding organization
JST FOREST; Personal Research Fellowship Award