Electronic states and magnetism driven quantum phenomena in pristine and Ce substituted Ga2O3

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