English

Artificial two-dimensional polar metal by charge transfer to a ferroelectric insulator

Materials Science 2020-07-14 v1 Mesoscale and Nanoscale Physics Strongly Correlated Electrons Applied Physics

Abstract

Integrating multiple properties in a single system is crucial for the continuous developments in electronic devices. However, some physical properties are mutually exclusive in nature. Here, we report the coexistence of two seemingly mutually exclusive properties-polarity and two-dimensional conductivity-in ferroelectric Ba0.2_{0.2}Sr0.8_{0.8}TiO3_3 thin films at the LaAlO3_3/Ba0.2_{0.2}Sr0.8_{0.8}TiO3_3 interface at room temperature. The polarity of a ~3.2 nm Ba0.2_{0.2}Sr0.8_{0.8}TiO3_3 thin film is preserved with a two-dimensional mobile carrier density of ~0.05 electron per unit cell. We show that the electronic reconstruction resulting from the competition between the built-in electric field of LaAlO3_3 and the polarization of Ba0.2_{0.2}Sr0.8_{0.8}TiO3_3 is responsible for this unusual two-dimensional conducting polar phase. The general concept of exploiting mutually exclusive properties at oxide interfaces via electronic reconstruction may be applicable to other strongly-correlated oxide interfaces, thus opening windows to new functional nanoscale materials for applications in novel nanoelectronics.

Keywords

Cite

@article{arxiv.2007.05903,
  title  = {Artificial two-dimensional polar metal by charge transfer to a ferroelectric insulator},
  author = {W. X. Zhou and H. J. Wu and J. Zhou and S. W. Zeng and C. J. Li and M. S. Li and R. Guo and J. X. Xiao and Z. Huang and W. M. Lv and K. Han and P. Yang and C. G. Li and Z. S. Lim and H. Wang and Y. Zhang and S. J. Chua and K. Y. Zeng and T. Venkatesan and J. S. Chen and Y. P. Feng and S. J. Pennycook and A. Ariando},
  journal= {arXiv preprint arXiv:2007.05903},
  year   = {2020}
}

Comments

Main text: 25 pages, 4 figures Supplementary note: 19 pages, 11 figures