Kinetics of thermal Mott metal-insulator transition in the Hubbard model
ORAL
Abstract
We present the first-ever microscopic dynamical simulation of the temperature-controlled Mott metal-insulator transition in the Hubbard model. By combining the efficient Gutzwiller method with molecular dynamics simulations, we demonstrate that the transformation from the correlated metal to the Mott insulator proceeds via the nucleation and growth of the Mott droplets. We show that after an initial incubation period, the early stage of the phase transformation is characterized by a constant nucleation rate and an interface-controlled cluster growth mechanism, consistent with the classical theory developed by Kolmogorov, Johnson, Mehl, and Avrami. This is followed by a novel intermediate stage of accelerated phase transformation that is characterized by avalanche behavior similar to the Barkhausen noise in magnetization dynamics. The implications of our findings for the recent nano-imaging experiments on metal-insulator transition of correlated materials are also discussed.
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Presenters
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Gia-Wei Chern
Department of Physics, University of Virginia, Univ of Virginia, Physics, University of Virginia
Authors
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Gia-Wei Chern
Department of Physics, University of Virginia, Univ of Virginia, Physics, University of Virginia