Dynamics of many-body localization in the presence of particle loss
arXiv:1706.00788 · doi:10.1088/2058-9565/aa9a02
Abstract
At long times residual couplings to the environment become relevant even in the most isolated experiments, creating a crucial difficulty for the study of fundamental aspects of many-body dynamics. A particular example is many-body localization in a cold-atom setting, where incoherent photon scattering introduces both dephasing and particle loss. Whereas dephasing has been studied in detail and is known to destroy localization already on the level of non-interacting particles, the effect of particle loss is less well understood. A difficulty arises due to the `non-local' nature of the loss process, complicating standard numerical tools using matrix product decomposition. Utilizing symmetries of the Lindbladian dynamics, we investigate the particle loss on both the dynamics of observables, as well as the structure of the density matrix and the individual states. We find that particle loss in the presence of interactions leads to dissipation and a strong suppression of the (operator space) entanglement entropy. Our approach allows for the study of the interplay of dephasing and loss for pure and mixed initial states to long times, which is important for future experiments using controlled coupling of the environment.
10 pages, 5 figures
References in corpus (9)
- The density-matrix renormalization group in the age of matrix product states
- Many body localization and thermalization in quantum statistical mechanics
- Matrix Product Density Operators: Simulation of finite-T and dissipative systems
- Many-body localization edge in the random-field Heisenberg chain
- Quantum trajectories and open many-body quantum systems
- Signatures of Many-Body Localization in a Controlled Open Quantum System
- Operator space entanglement entropy in transverse Ising chain
- Non-equilibrium dynamics of bosonic atoms in optical lattices: Decoherence of many-body states due to spontaneous emission
- Light scattering and dissipative dynamics of many fermionic atoms in an optical lattice