Metal-Insulator Transition in -type bulk crystals and films of strongly compensated SrTiO
arXiv:2102.11783 · doi:10.1103/PhysRevMaterials.5.044606
Abstract
We start by analyzing experimental data of Spinelli [A. Spinelli, M. A. Torija, C. Liu, C. Jan, and C. Leighton, Phys. Rev. B 81, 155110 (2010)] for conductivity of -type bulk crystals of SrTiO (STO) with broad electron concentration range of - cm, at low temperatures. We obtain good fit of the conductivity data, , by the Drude formula for cm assuming that used for doping insulating STO bulk crystals are strongly compensated and the total concentration of background charged impurities is cm. At , the conductivity collapses with decreasing and the Drude theory fit fails. We argue that this is the metal-insulator transition (MIT) in spite of the very large Bohr radius of hydrogen-like donor state nm with which the Mott criterion of MIT for a weakly compensated semiconductor, , predicts times smaller . We try to explain this discrepancy in the framework of the theory of the percolation MIT in a strongly compensated semiconductor with the same cm. In the second part of this paper, we develop the percolation MIT theory for films of strongly compensated semiconductors. We apply this theory to doped STO films with thickness nm and calculate the critical MIT concentration . We find that, for doped STO films on insulating STO bulk crystals, grows with decreasing . Remarkably, STO films in a low dielectric constant environment have the same . This happens due to the Rytova-Keldysh modification of a charge impurity potential which allows a larger number of the film charged impurities to contribute to the random potential.
7 pages, 2+1 figures. Published version with added Appendix on Metal-insulator transition in STO wires
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