Lattice contraction induced by resistive switching in chromium-doped V2O3: a hallmark of Mott physics
arXiv:2105.05093 · doi:10.1002/aelm.202500077
Abstract
Since the beginnings of the electronic age, a quest for ever faster and smaller switches has been initiated, since this element is ubiquitous and foundational in any electronic circuit to regulate the flow of current. Mott insulators are promising candidates to meet this need as they undergo extremely fast resistive switching under electric field. However the mechanism of this transition is still under debate. Our spatially-resolved μ-XRD imaging experiments carried out on the prototypal Mott insulator (V0.95Cr0.05)2O3 show that the resistive switching is associated with the creation of a conducting filamentary path consisting in an isostructural compressed phase without any chemical nor symmetry change. This clearly evidences that the resistive switching mechanism is inherited from the bandwidth-controlled Mott transition. This discovery might hence ease the development of a new branch of electronics dubbed Mottronics.
14 pages, 5 figures + Supplementary Materials (14 pages, 7 figures)
References in corpus (9)
- Electric-Field-Induced Resistive Switching in a Family of Mott Insulators : towards Non-Volatile Mott-RRAM Memories
- Universal phase dynamics in VO2 switches revealed by ultrafast operando diffraction
- Resistive switching induced by electronic avalanche breakdown in GaTaSeTe narrow gap Mott Insulators
- Quantum materials for energy-efficient neuromorphic computing
- Electric Pulse Induced Resistive Switching, Electronic Phase Separation, and Possible Superconductivity in a Mott insulator
- Room temperature Mott metal-insulator transition in V2O3 compounds induced via strain-engineering
- Optical properties of V2O3 in its whole phase diagram
- Mott materials: unsuccessful metals with a bright future
- Correlated Insulator Collapse due to Quantum Avalanche via In-Gap Ladder States