Out-of-equilibrium dynamics in a quantum impurity model: numerics for particle transport and entanglement entropy
arXiv:1707.06111 · doi:10.1103/PhysRevB.96.195117
Abstract
We investigate the out-of-equilibrium properties of a simple quantum impurity model, the interacting resonant level model (IRLM). We focus on the scaling regime, where the bandwidth of the fermions in the leads is larger than all the other energies, so that the lattice and the continuum versions of the model become equivalent. Using time-dependent DMRG simulations initialized with states having different densities in the two leads we extend the results of Boulat, Saleur and Schmitteckert [Phys. Rev. Lett. 101, 140601 (2008)] concerning the current-voltage (-) curves, for several values of the interaction strength . We estimate numerically the Kondo scale and the exponent associated to the tunneling of the fermions from the leads to the dot. Next we analyze the quantum entanglement properties of the steady states. We focus in particular on the entropy rate , describing the linear growth with time of the bipartite entanglement in the system. We show that, as for the current, is described by some function of and of the rescaled bias . Finally, the spatial structure of the entropy profiles is discussed.
12 pages, 16 figures
References in corpus (10)
- The density-matrix renormalization group in the age of matrix product states
- Real time evolution using the density matrix renormalization group
- Entanglement and correlation functions following a local quench: a conformal field theory approach
- Quantum Noise as an Entanglement Meter
- Time-evolving a matrix product state with long-ranged interactions
- Twofold advance in the theoretical understanding of far-from-equilibrium properties of interacting nanostructures
- Entanglement from Charge Statistics: Exact Relations for Many-Body Systems
- Logarithmic current fluctuations in non-equilibrium quantum spin chains
- Universal quench dynamics of interacting quantum impurity systems
- From thermal equilibrium to nonequilibrium quench dynamics: A conserving approximation for the interacting resonant level
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