Science Advances · 2021 · 16 citations · 19 references
In solids, strong repulsion between electrons can inhibit their movement and result in a “Mott” metal-to-insulator transition (MIT), a fundamental phenomenon whose understanding has remained a challenge for over 50 years. A key issue is how the wave-like itinerant electrons change into a localized-like state due to increased interactions. However, observing the MIT in terms of the energy- and momentum-resolved electronic structure of the system, the only direct way to probe both itinerant and localized states, has been elusive. Here we show, using angle-resolved photoemission spectroscopy (ARPES), that in V<sub>2</sub>O<sub>3</sub>, the temperature-induced MIT is characterized by the progressive disappearance of its itinerant conduction band, without any change in its energy-momentum dispersion, and the simultaneous shift to larger binding energies of a quasi-localized state initially located near the Fermi level.
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Masatoshi Imada, A. Fujimori, Yoshinori Tokura · Reviews of Modern Physics · 1998 · 7.4K citations
N. F. Mott · Reviews of Modern Physics · 1968 · 1.7K citations
Solid-state Ionic, Transition Metal Chalcogenides, Ionic Lattices +12