High Mobility Two-Dimensional Electron Gas in BaSnO<sub>3</sub>/SrNbO<sub>3</sub> Interface
ORAL
Abstract
Two-dimensional electron gases (2DEGs) realized at interfaces offer great promise for high charge carrier concentrations and low-loss charge transport. BaSnO3 (BSO) is well-known for its high mobility due to its Sn-5s dominated conduction band minimum (CBM). Nb4+ with d1 valence configuration in SrNbO3 (SNO) may inject the d1 electron across the interface into the unoccupied Sn-5s states in BSO. In the present study, we use the synergy of ACBN0 computations and experiment to explore the charge transfer and 2DEG formation at BSO/SNO interfaces. The results of the ACBN0 computations confirm the intended Nb-4d to Sn-5s charge transfer. Moreover, the Sn-5s CMB is located up to ~1.2 eV below the Fermi level, corresponding to an excess electron density in BSO of ~1021 cm-3. Our angle-resolved X-ray photoelectron spectroscopy experiments for BSO/SNO interfaces grown by molecular beam epitaxy suggest an even higher electron density of ~4×1021 cm-3. This charge density discrepancy is attributed to a slight overestimation of the bandgap in the computation relative to experiment. In summary, consistency of theory and the experiments shows that BSO/SNO interfaces provide a novel rational materials platform for 2DEG formation and ultra-low loss electron transport.
*B.K. and S.M. would like to acknowledge computing support by the Extreme Science and Engineering Discovery Environment (XSEDE) resource Stampede2 at TACC through allocation TG-DMR110093. S.T. and R.B.C. gratefully acknowledge support from the Air Force Office of Scientific Research under award number FA9550-20-1-0034 and Alabama EPSCoR-GRSP Fellowship. H.P. acknowledges partial support through the National Science Foundation (Platform for the Accelerated Realization, Analysis, and Discovery of Interface Materials (PARADIM)) under Cooperative Agreement no. DMR-2039380.
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Publication:Mahatara, S., Thapa, S., Paik, H., Comes, R., & Kiefer, B. (2022). High Mobility Two-Dimensional Electron Gas at the BaSnO3/SrNbO3 Interface. arXiv preprint arXiv:2206.12028 (accepted for publication in ACS Applied Materials and Interface, DOI: 10.1021/acsami.2c12195).
Presenters
Sharad Mahatara
New Mexico State University
Authors
Sharad Mahatara
New Mexico State University
Suresh Thapa
Intel Corporation, Oregon
Hanjong Paik
School of Electrical and Computer Engineering, University of Oklahoma
Ryan Comes
Department of Physics, Auburn University
Boris Kiefer
New Mexico State University
Department of Physics, New Mexico State University