18.80.+d Quantum dissipative systems

Epidemic Dynamics in Open Quantum Spin Systems

Date: 
2017-10-04
Author(s): 

Carlos Pérez-Espigares, Matteo Marcuzzi, Ricardo Gutiérrez, and Igor Lesanovsky

Reference: 

Phys. Rev. Lett. 119, 140401 (2017)

Fluctuating hydrodynamics, current fluctuations, and hyperuniformity in boundary-driven open quantum chains

Date: 
2017-11-13
Author(s): 

Federico Carollo, Juan P. Garrahan, Igor Lesanovsky, and Carlos Pérez-Espigares

Reference: 

Phys. Rev. E 96, 052118 (2017)

Nonequilibrium effective field theory for absorbing state phase transitions in driven open quantum spin systems

Date: 
2017-01-27
Author(s): 

Michael Buchhold, Benjamin Everest, Matteo Marcuzzi, Igor Lesanovsky, and Sebastian Diehl

Reference: 

Phys. Rev. B 95, 014308 (2017)

Metastability in an open quantum Ising model

Date: 
2016-11-18
Author(s): 

Dominic C. Rose, Katarzyna Macieszczak, Igor Lesanovsky, and Juan P. Garrahan

Reference: 

Physical Review E 94, 052132 (2016)

Emergent kinetic constraints, ergodicity breaking, and cooperative dynamics in noisy quantum systems

Date: 
2016-11-04
Author(s): 

B. Everest, M. Marcuzzi, J. P. Garrahan and I. Lesanovsky

Reference: 

Physical Review E 94, 052108 (2016)

Quantum non-equilibrium dynamics of Rydberg gases in the presence of dephasing noise of different strengths

Date: 
2016-09-05
Author(s): 

Emanuele Levi, Ricardo Gutiérrez, Igor Lesanovsky

Reference: 

Journal of Physics B 49, 184003 (2016)

Exploring quantum phases by driven dissipation

Date: 
2015-07-29
Author(s): 

Nicolai Lang and Hans Peter Büchler

Reference: 

Phys. Rev. A 92, 012128 (2015)

Dephasing and decay are the intrinsic dissipative processes prevalent in any open quantum system and the dominant mechanisms for the loss of coherence and entanglement. This inadvertent effect not only can be overcome but can even be capitalized on in a dissipative quantum simulation by means of tailored couplings between the quantum system and the environment.

Emergence of spontaneous symmetry breaking in dissipative lattice systems

Date: 
2016-06-20
Author(s): 

H. Wilming, M. J. Kastoryano, A. H. Werner, J. Eisert

Reference: 

arXiv:1602.01108

A cornerstone of the theory of phase transitions is the observation that many-body systems exhibiting a spontaneous symmetry breaking in the thermodynamic limit generally show extensive fluctuations of an order parameter in large but finite systems. In this work, we introduce the dynamical analogue of such a theory.

Robustness of topologically protected edge states in quantum walk experiments with neutral atoms

Date: 
2016-05-11
Author(s): 

Thorsten Groh, Stefan Brakhane, Wolfgang Alt, Dieter Meschede, Janos Asbóth, Andrea Alberti

Reference: 

arXiv:1605.03633 [quant-ph]

Discrete-time quantum walks allow Floquet topological insulator materials to be explored using controllable systems such as ultracold atoms in optical lattices. By numerical simulations, we study the robustness of topologically protected edge states in the presence of temporal disorder in one- and two-dimensional discrete-time quantum walks. We also develop a simple analytical model to gain further insight into the robustness of these edge states against either spin or spatial dephasing.

Phase-dependent exciton transport and energy harvesting from thermal environments

Date: 
2015-08-15 - 2016-02-16
Author(s): 

S. Oviedo-Casado, J. Prior, A. W. Chin, R. Rosenbach, S. F. Huelga, and M. B. Plenio

Reference: 

Phys. Rev. A 93, 020102(R)

Non-Markovian effects in the evolution of open quantum systems have recently attracted widespread interest, particularly in the context of assessing the efficiency of energy and charge transfer in nanoscale biomolecular networks and quantum technologies. With the aid of many-body simulation methods, we uncover and analyze an ultrafast environmental process that causes energy relaxation in the reduced system to depend explicitly on the phase relation of the initial-state preparation.

Syndicate content