Confinement-Induced Isosymmetric Metal-Insulator Transition in Ultrathin Epitaxial V2O3 Films
arXiv:2312.04425 · doi:10.1021/acsami.3c18807
Abstract
Dimensional confinement has shown to be an effective strategy to tune competing degrees of freedom in complex oxides. Here, we achieved atomic layered growth of trigonal vanadium sesquioxide (V2O3) by means of oxygen-assisted molecular beam epitaxy. This led to a series of high-quality epitaxial ultrathin V2O3 films down to unit cell thickness, enabling the study of the intrinsic electron correlations upon confinement. By electrical and optical measurements, we demonstrate a dimensional confinement-induced metal-insulator transition in these ultrathin films. We shed light on the Mott-Hubbard nature of this transition, revealing an abrupt vanishing of the quasiparticle weight as demonstrated by photoemission spectroscopy. Furthermore, we prove that dimensional confinement acts as an effective out-of-plane stress. This highlights the structural component of correlated oxides in a confined architecture, while opening an avenue to control both in-plane and out-of-plane lattice components by epitaxial strain and confinement, respectively.
References in corpus (8)
- Enhanced Crystal Field Splitting and Orbital Selective Coherence by Strong Correlations in V_2O_3
- Mott-Hubbard transition in V2O3 revisited
- Surface dead layer for quasiparticles near a Mott transition
- How chromium doping affects the correlated electronic structure of V2O3
- Optical properties of V2O3 in its whole phase diagram
- Imaging the itinerant-to-localized transmutation of electrons across the metal-to-insulator transition in VO
- On the origin of supertetragonality in BaTiO
- Zoology of spin and orbital fluctuations in ultrathin oxide films