Anodic oxidation of epitaxial superconductor-semiconductor hybrids

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  • Asbjorn C. C. Drachmann
  • Rosa E. Diaz
  • Candice Thomas
  • Henri J. Suominen
  • Alexander M. Whiticar
  • Antonio Fornieri
  • Sergei Gronin
  • Tiantian Wang
  • Geoffrey C. Gardner
  • Alex R. Hamilton
  • Fabrizio Nichele
  • Michael J. Manfra
  • Marcus, Charles M.

We demonstrate a new fabrication process for hybrid semiconductor-superconductor heterostructures based on anodic oxidation (AO), allowing controlled thinning of epitaxial Al films. Structural and transport studies of oxidized epitaxial Al films grown on insulating GaAs substrates reveal spatial nonuniformity and enhanced critical temperature and magnetic fields. Oxidation of epitaxial Al on hybrid InAs heterostructures with a conducting quantum well show similarly enhanced superconducting properties transferred to the two-dimensional electron gas (2DEG) by proximity effect, with critical perpendicular magnetic fields up to 3.5 T. An insulating AlOx film that passivates the heterostructure from exposure to air is obtained by complete oxidation of the Al. It simultaneously removes the need to strip Al which damages the underlying semiconductor. AO passivation yielded 2DEG mobilities two times higher than similar devices with Al removed by wet etching. An AO-passivated Hall bar showed quantum Hall features emerging at a transverse field of 2.5 T, below the critical transverse field of thinned films, eventually allowing transparent coupling of quantum Hall effect and superconductivity. AO thinning and passivation are compatible with standard lithographic techniques, giving lateral resolution below

Original languageEnglish
Article number013805
JournalPhysical Review Materials
Volume5
Issue number1
Number of pages10
ISSN2475-9953
DOIs
Publication statusPublished - 25 Jan 2021

    Research areas

  • CRITICAL MAGNETIC-FIELD, TRANSITION, TEMPERATURE, FILMS

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