Feasibility of the ion-trap simulation of a class of non-equilibrium phase transitions
arXiv:1912.06091 · doi:10.1140/epjd/e2019-100180-4
Abstract
Our work analyzes the potential of ion traps for the experimental simulation of non-equilibrium phase transitions observed in certain spin-chain models which can be mapped to free-fermion systems. In order to make the dynamics more accessible to an experimenter, we first consider relatively small systems, with few particles. We analyze phase transitions in the non-equilibrium asymptotic regimes of an XY spin chain with a transverse magnetic field and coupled to Markovian baths at the end sites. We study a static open system and a case when the spin chain is periodically kicked. Notably, in the latter case for some anisotropy parameters the dependence on the system size converges rapidly to the many-particle limit, thus facilitating the experimental observation of the dynamics. We also define local observables that indicate the presence of the quantum phase transitions of interest, and we study the effects of the long-range character of the typical interactions obtained in ion traps.
8 pages
References in corpus (6)
- Third quantization: a general method to solve master equations for quadratic open Fermi systems
- Dynamical Phase Transitions and Instabilities in Open Atomic Many-Body Systems
- Quantum phase transition in a far from equilibrium steady state of XY spin chain
- Dynamical quantum phase transitions in the dissipative Lipkin-Meshkov-Glick model and proposed realization in optical cavity QED
- Environmentally induced Quantum Dynamical Phase Transition in the spin swapping operation
- Non-equilibrium phase transition in a periodically driven XY spin chain