English

Charge gain via solid-state gating of an oxide Mott system

Strongly Correlated Electrons 2025-03-21 v1 Materials Science

Abstract

The modulation of channel conductance in field-effect transistors (FETs) via metal-oxide-semiconductor (MOS) structures has revolutionized information processing and storage. However, the limitations of silicon-based FETs in electrical switching have driven the search for new materials capable of overcoming these constraints. Electrostatic gating of competing electronic phases in a Mott material near its metal to insulator transition (MIT) offers prospects of substantial modulation of the free carriers and electrical resistivity through small changes in band filling. While electrostatic control of the MIT has been previously reported, the advancement of Mott materials towards novel Mott transistors requires the realization of their charge gain prospects in a solid-state device. In this study, we present gate-control of electron correlation using a solid-state device utilizing the oxide Mott system La1xSrxVO3La_{1-x}Sr_xVO_3 as a correlated FET channel. We report on a gate resistance response that cannot be explained in a purely electrostatic framework, suggesting at least ×100\times100 charge gain originating from the correlated behavior. These preliminary results pave the way towards the development of highly efficient, low-power electronic devices that could surpass the performance bottlenecks of conventional FETs by leveraging the electronic phase transitions of correlated electron systems.

Keywords

Cite

@article{arxiv.2411.15818,
  title  = {Charge gain via solid-state gating of an oxide Mott system},
  author = {Lishai Shoham and Itai Silber and Gal Tuvia and Maria Baskin and Soo-Yoon Hwang and Si-Young Choi and Myung-Geun Han and Yimei Zhu and Eilam Yalon and Marcelo J. Rozenberg and Yoram Dagan and Felix Trier and Lior Kornblum},
  journal= {arXiv preprint arXiv:2411.15818},
  year   = {2025}
}
R2 v1 2026-06-28T20:10:27.977Z