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Quantized Ballistic Transport of Electrons and Electron Pairs in LaAlO3/SrTiO3 Nanowires

  • Anil Annadi
  • , Guanglei Cheng
  • , Hyungwoo Lee
  • , Jung Woo Lee
  • , Shicheng Lu
  • , Anthony Tylan-Tyler
  • , Megan Briggeman
  • , Michelle Tomczyk
  • , Mengchen Huang
  • , David Pekker
  • , Chang Beom Eom
  • , Patrick Irvin
  • , Jeremy Levy
  • University of Pittsburgh
  • Pittsburgh Quantum Institute
  • University of Science and Technology of China
  • University of Wisconsin-Madison

Research output: Contribution to journalArticlepeer-review

62 Scopus citations

Abstract

SrTiO3-based heterointerfaces support quasi-two-dimensional (2D) electron systems that are analogous to III-V semiconductor heterostructures, but also possess superconducting, magnetic, spintronic, ferroelectric, and ferroelastic degrees of freedom. Despite these rich properties, the relatively low mobilities of 2D complex-oxide interfaces appear to preclude ballistic transport in 1D. Here we show that the 2D LaAlO3/SrTiO3 interface can support quantized ballistic transport of electrons and (nonsuperconducting) electron pairs within quasi-1D structures that are created using a well-established conductive atomic-force microscope (c-AFM) lithography technique. The nature of transport ranges from truly single-mode (1D) to three-dimensional (3D), depending on the applied magnetic field and gate voltage. Quantization of the lowest e2/h plateau indicate a ballistic mean-free path lMF ∼ 20 μm, more than 2 orders of magnitude larger than for 2D LaAlO3/SrTiO3 heterostructures. Nonsuperconducting electron pairs are found to be stable in magnetic fields as high as B = 11 T and propagate ballistically with conductance quantized at 2e2/h. Theories of one-dimensional (1D) transport of interacting electron systems depend crucially on the sign of the electron-electron interaction, which may help explain the highly ballistic transport behavior. The 1D geometry yields new insights into the electronic structure of the LaAlO3/SrTiO3 system and offers a new platform for the study of strongly interacting 1D electronic systems.

Original languageEnglish
Pages (from-to)4473-4481
Number of pages9
JournalNano Letters
Volume18
Issue number7
DOIs
StatePublished - 11 Jul 2018

Keywords

  • ballistic transport
  • electron pairing
  • Electron waveguide
  • LaAlO/SrTiO

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