English

Current driven insulator-to-metal transition without Mott breakdown in Ca$_2$RuO$_4$

Strongly Correlated Electrons 2023-10-31 v1

Abstract

The electrical control of a material's conductivity is at the heart of modern electronics. Conventionally, this control is achieved by tuning the density of mobile charge carriers. A completely different approach is possible in Mott insulators such as Ca2_2RuO4_4, where an insulator-to-metal transition (IMT) can be induced by a weak electric field or current. This phenomenon has numerous potential applications in, e.g., neuromorphic computing. While the driving force of the IMT is poorly understood, it has been thought to be a breakdown of the Mott state. Using in operando angle-resolved photoemission spectroscopy, we show that this is not the case: The current-driven conductive phase arises with only a minor reorganisation of the Mott state. This can be explained by the co-existence of structurally different domains that emerge during the IMT. Electronic structure calculations show that the boundaries between domains of slightly different structure lead to a drastic reduction of the overall gap. This permits an increased conductivity, despite the persistent presence of the Mott state. This mechanism represents a paradigm shift in the understanding of IMTs, because it does not rely on the simultaneous presence of a metallic and an insulating phase, but rather on the combined effect of structurally inhomogeneous Mott phases.

Keywords

Cite

@article{arxiv.2303.00662,
  title  = {Current driven insulator-to-metal transition without Mott breakdown in Ca$_2$RuO$_4$},
  author = {Davide Curcio and Charlotte E. Sanders and Alla Chikina and Henriette E. Lund and Marco Bianchi and Veronica Granata and Marco Cannavacciuolo and Giuseppe Cuono and Carmine Autieri and Filomena Forte and Alfonso Romano and Mario Cuoco and Pavel Dudin and Jose Avila and Craig Polley and Thiagarajan Balasubramanian and Rosalba Fittipaldi and Antonio Vecchione and Philip Hofmann},
  journal= {arXiv preprint arXiv:2303.00662},
  year   = {2023}
}

Comments

12 pages, 14 figures

R2 v1 2026-06-28T08:54:45.846Z