English

Ionic modulation at the LaAlO$_3$/KTaO$_3$ interface for extreme high-mobility two-dimensional electron gas

Materials Science 2022-10-24 v1

Abstract

Due to the coexistence of many emergent phenomena, including 2D superconductivity and a large Rashba spin-orbit coupling, 5d transition metal oxides based two-dimensional electron systems (2DESs) have been prospected as one of the potential intrants for modern electronics. However, despite the lighter electron mass, the mobility of carriers, a key requisite for high-performance devices, in 5d-oxides devices remains far behind their 3d-oxides analogs. The carriers mobility in these oxides is significantly hampered by the inevitable presence of defects generated during the growth process. Here, we report very high mobility (\sim 22650 cm2^2V1^{-1}s1^{-1}) of 5d-2DES confined at the LaAlO3_3/KTaO3_3 interface. The high mobility, which is beyond the values observed in LaAlO3_3/SrTiO3_3 and γ\gamma-Al2_2O3_3/SrTiO3_3 systems in the same carrier-density range, is achieved using the ionic-liquid gating at room temperature. We postulate that the ionic-liquid gating affects the oxygen vacancies and efficiently reduces any disorder at the interface. Investigating density and mobility in a broad range of back-gate voltage, we reveal that the mobility follows the power-law μn1.2\mu \propto n^{1.2}, indicating the very high quality of ionic-liquid-gated LaAlO3_3/KTaO3_3 devices, consistent with our postulate. Further, the analysis of the quantum oscillations measured in high magnetic fields confirms that the high-mobility electrons occupy the electronic sub-bands emerging from the Ta:5d orbitals of KTaO3_3.

Keywords

Cite

@article{arxiv.2209.12390,
  title  = {Ionic modulation at the LaAlO$_3$/KTaO$_3$ interface for extreme high-mobility two-dimensional electron gas},
  author = {H. Yan and S. W. Zeng and K. Rubi and G. J. Omar and Z. T. Zhang and M. Goiran and W. Escoffier and A. Ariando},
  journal= {arXiv preprint arXiv:2209.12390},
  year   = {2022}
}

Comments

20 pages, 6 figures

R2 v1 2026-06-28T02:04:09.690Z