Multi-probe detection of domain nucleation across the metal-insulator transition in VO
arXiv:2605.01314 · doi:10.1063/5.0291227
Abstract
Electronic and structural degrees of freedom are often intimately coupled in strongly correlated systems, which result in intriguing macroscopic and microscopic phenomena. Using the well-studied material VO as a prototype, here we explore the domain distribution across the metal-insulator transition (MIT). We use macroscopic as well as microscopic techniques, such as first-order reversal curve (FORC) and infrared imaging, to probe the domain distributions across the MIT. This study compares MIT in thin films of VO with different grain sizes grown by pulsed laser deposition and dc sputtering. We explore the relation between the nature of the FORC distribution and the corresponding thermal hysteresis due to interactions between the supercooled metallic domains and surrounding insulating matrix. Our multi-probe study with quantitative analysis provides a correlation between the growth, domain interaction, and domain nucleation process in MIT.
References in corpus (10)
- Mott transition in VO2 revealed by infrared spectroscopy and nano-imaging
- Infrared spectroscopy and nano-imaging of the insulator-to-metal transition in vanadium dioxide
- Multiple Avalanches Across the Metal-Insulator Transition of Vanadium Oxide Nano-scaled Junctions
- Electrically-driven phase transition in magnetite nanostructures
- Signature of persistent metallic domains in FORC measurements of the VO metal-insulator transition
- Reversal-Field Memory in the Hysteresis of Spin Glasses
- Vanadium Dioxide Thin Films Synthesized Using Low Thermal Budget Atmospheric Oxidation
- Role of local temperature in the current-driven metal-insulator transition of Ca2RuO4
- First-Order Reversal Curves of the Magnetostructural Phase Transition in FeTe
- Growth of ultra-clean single crystals of RuO2