Electronic states and magnetism driven quantum phenomena in pristine and Ce substituted Ga<sub>2</sub>O<sub>3</sub>

ORAL

Abstract



Here, we present structural, electronic, and magnetic properties of the most stable monocline pristine, and Ce substituted β-Ga2O3 calculated from density functional theory. First, we confirm the structural and chemical formation from cohesive and formation energies of the pristine phase and calculate defect formation of Ce-substituted composition. The calculations confirm a large direct band gap in the pristine phase. Ce atom is energetically favorable to substitute the octahedral Ga site and the Ce defect changes the wide band gap nonmagnetic semiconducting β-Ga2O3 to a weakly magnetic material with the main magnetic contribution coming from Ce-4f states. Further, we study the crucial interplay between local magnetic moments and electronic states to have a foundational understanding to bring these classes of materials for quantum applications.

*Ab initio calculations at U. Iowa were supported by the USDOE, Office of Science, Office of BES under Award Number DE-SC0023393.Work done at the Ames National Laboratory was conducted for the US-DOE under its contract with Iowa State University, Contract No. DE-AC02-07CH11358.

Presenters

  • Yogendra Limbu

    • University of Iowa

Authors

  • Yogendra Limbu

    • University of Iowa
  • Michael E Flatté

    • University of Iowa
    • Department of Physics and Astronomy, University of Iowa, IA 52242, USA
  • Durga Paudyal

    • Ames National Laboratory