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Engineering of Strongly Bound Interlayer Excitons in Mg<sub>2</sub>TiO<sub>4</sub> Thin Films

ORAL

Abstract

Two-dimensional transition metal oxides (2DTMOs) are a promising addition to the growing array of functional 2D materials, with potential applications related to their long-lived, strongly bound excitons. 2DTMOs are expected to be stable since they do not react readily with water or oxygen. However, unlike many other 2D materials, 2DTMOs do not natively form stackable van der Waals-bonded layers, so they present challenges for structural prediction and characterization. Recent experimental work on the MgO(001) surface has demonstrated the growth of thin films of Mg2TiO4, whose low energy electronic states are dominated by Ti and O orbitals. We review the structure of these thin films, computed at the DFT level, and present many-body calculations of their electronic excitations. Our DFT calculations demonstrate that the film has a band offset favorable for interlayer exciton formation. Motivated by that work, we present GW and GW-BSE calculations of quasiparticle energies, exciton binding energies, and optical absorption spectra. These calculations characterize the suite of intra- and interlayer excitons that exist in Mg2TiO4 and shed light on the importance of film thickness in controlling their relative binding energies.

Presenters

  • Sohrab Ismail-Beigi

    Yale University, Department of Physics, Yale University; Department of Applied Physics, Yale University;Department of Mechanical Engineering & Materials Science, Yale University

Authors

  • Stephen Eltinge

    Yale University, Department of Physics, Yale University

  • Kidae Shin

    Yale University

  • Sangjae Lee

    Seoul National University

  • Hyungki Shin

    University of British Columbia

  • Juan Jiang

    University of Science and Technology of China

  • Hawoong Hong

    Argonne National Laboratory

  • Bruce A Davidson

    University of British Columbia

  • Ke Zou

    University of British Columbia

  • Charles H Ahn

    Yale University

  • Frederick J Walker

    Yale University

  • Sohrab Ismail-Beigi

    Yale University, Department of Physics, Yale University; Department of Applied Physics, Yale University;Department of Mechanical Engineering & Materials Science, Yale University