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Electrically driven insulator-to-metal transition in a correlated insulator: Electronic mechanism and thermal description

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arxiv 2209.02758 v2 pith:3PLNFN2A submitted 2022-09-06 cond-mat.str-el cond-mat.mes-hall

Electrically driven insulator-to-metal transition in a correlated insulator: Electronic mechanism and thermal description

classification cond-mat.str-el cond-mat.mes-hall
keywords insulator-to-metalnon-equilibriumcorrelatedmodelresistivetmostransitiontransitions
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Motivated by the resistive switchings in transition-metal oxides (TMOs) induced by a voltage bias, we study the far-from-equilibrium dynamics of an electric-field-driven strongly-correlated model featuring a first-order insulator-to-metal transition at equilibrium, namely the dimer-Hubbard model. We use a non-equilibrium implementation of the dynamical cluster approximation to access the steady-state spectral and transport properties. We show that the electric field can drive both metal-to-insulator and insulator-to-metal transitions. While they proceed by quite distinct mechanisms, specifically simple heating of the metal versus non-equilibrium effects in the correlated charge gap, we show that both of these non-equilibrium transitions can be unified in a single framework once the excitations are accounted for in terms of an effective temperature. This conceptual advance brings together the two sides of the long-lasting debate over the origins of the electrically-driven resistive switching in TMOs.

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