Optical and Electrical Control of Confined Electrons in SrTiO<sub>3</sub>/LaAlO<sub>3</sub> Quantum Well Heterostructures

ORAL

Abstract

While the SrTiO3/LaAlO3 (STO/LAO) system has been heavily studied in hopes of utilizing the interfacial 2DEG in all-oxide electronics, the 2.4 eV conduction band offset between STO and LAO also offers the opportunity to engineer quantum well (QW) heterostructures for use in electronic and optoelectronic devices. The operation of many such devices relies on the precise optical and/or electronic control of confined electrons through the stimulation of intersubband transitions or resonant tunneling. Here, we present optical spectroscopy measurements demonstrating room-temperature intersubband absorption in STO/LAO QW heterostructures on the order of hundreds of meV as well as tunneling measurements showing resonant tunneling through confined states. The presence of these phenomena indicates confinement of electrons in the STO conduction band and shows the ability to precisely control confined states in these structures. As a necessary prerequisite for the observation of these phenomena is the growth of high-quality samples, we also present a thorough structural characterization of our heterostructures indicating unprecedentedly low interfacial roughness of 0.3 unit cells/interface. We also discuss the feasibility of integrating these devices on Si (001) for use in Si photonics.

Presenters

  • John Ortmann

    • Physics, University of Texas at Austin

Authors

  • John Ortmann

    • Physics, University of Texas at Austin
  • Nish Nookala

    • Electrical and Computer Engineering, University of Texas at Austin
  • Qian He

    • Condensed Matter Sciences, Oak Ridge National Lab
  • Lingyuan Gao

    • Univ of Texas, Austin
    • Physics, Univ of Texas, Austin
    • Physics, University of Texas at Austin
  • Albina Borisevich

    • Materials Science and Technology Division, Oak Ridge National Laboratory
    • Oak Ridge National Lab
    • Condensed Matter Sciences, Oak Ridge National Lab
  • Agham Posadas

    • Univ of Texas, Austin
    • Physics, University of Texas at Austin
    • Physics, UT-Austin
    • Physics, Univ of Texas, Austin
  • Mikhail Belkin

    • Electrical and Computer Engineering, University of Texas at Austin
  • Alexander Demkov

    • Univ of Texas, Austin
    • Physics, Univ of Texas, Austin
    • Physics, University of Texas at Austin
    • Physics, UT-Austin