Non-Markovian Dynamics in Ultracold Rydberg Aggregates
arXiv:1602.07981 · doi:10.1088/0953-4075/49/13/134001
Abstract
We propose a setup of an open quantum system in which the environment can be tuned such that either Markovian or non-Markovian system dynamics can be achieved. The implementation uses ultracold Rydberg atoms, relying on their strong long-range interactions. Our suggestion extends the features available for quantum simulators of molecular systems employing Rydberg aggregates and presents a new test bench for fundamental studies of the classification of system-environment interactions and the resulting system dynamics in open quantum systems.
13 pages, 4 figures
References in corpus (14)
- Quantum Non-Markovianity: Characterization, Quantification and Detection
- Quasiclassical calculations of BBR-induced depopulation rates and effective lifetimes of Rydberg nS, nP and nD alkali-metal atoms with n < 80
- On measures of non-Markovianity: divisibility vs. backflow of information
- Foundations and Measures of Quantum Non-Markovianity
- Coherent dipole-dipole coupling between two single atoms at a Förster resonance
- Non-Markovianity through flow of information between a system and an environment
- Crossover Between Non-Markovian and Markovian Dynamics Induced by a Hierarchical Environment
- All-optical non-Markovian stroboscopic quantum simulator
- Quantum simulation of energy transport with embedded Rydberg aggregates
- Dissipative quantum dynamics in low-energy collisions of complex nuclei
- Quantum simulation of small-polaron formation with trapped ions
- Non-Markovianity and memory effects in quantum open systems
- Unstable particles as open quantum systems
- Time evolution of open quantum many-body systems
Cited by in corpus (7)
- Trapped-ion quantum simulation of excitation transport: disordered, noisy, and long-range connected quantum networks
- Rydberg Aggregates
- Two-dimensional spectroscopy of Rydberg gases
- Imaging the interface of a qubit and its quantum-many-body environment
- Gaussian processes for choosing laser parameters for driven, dissipative Rydberg aggregates
- Decoherence by spontaneous emission: a single-atom analog of superradiance
- Quantum network tomography of Rydberg arrays by machine learning