Driven-dissipative control of cold atoms in tilted optical lattices
arXiv:2101.00547 · doi:10.1103/PhysRevA.103.043322
Abstract
We present a sequence of driven-dissipative protocols for controlling cold atoms in tilted optical lattices. These experimentally accessible examples are templates that demonstrate how dissipation can be used to manipulate quantum many-body systems. We consider bosonic atoms trapped in a tilted optical lattice, immersed in a superfluid bath, and excited by coherent Raman lasers. With these ingredients, we are able to controllably transport atoms in the lattice and produce self-healing quantum states: a Mott insulator and the topologically ordered spin-1 AKLT state.
Published version after response to referee comments
References in corpus (10)
- The density-matrix renormalization group in the age of matrix product states
- An Open-System Quantum Simulator with Trapped Ions
- Quantum Simulation of Antiferromagnetic Spin Chains in an Optical Lattice
- Quantum trajectories and open many-body quantum systems
- Atomic three-body loss as a dynamical three-body interaction
- Species-specific optical lattices
- Measurement-based quantum computer in the gapped ground state of a two-body Hamiltonian
- Cooling in strongly correlated optical lattices: prospects and challenges
- Dissipative dynamics of atomic Hubbard models coupled to a phonon bath: Dark state cooling of atoms within a Bloch band of an optical lattice
- Engineered Open Systems and Quantum Simulations with Atoms and Ions