Autonomous stabilization of photonic Laughlin states through angular momentum potentials
arXiv:2105.06751 · doi:10.1103/PhysRevA.104.023704
Abstract
We propose a method to stabilize Laughlin states of a large number of strongly interacting photons by combining a frequency-selective incoherent pump with a step-like potential in the angular momentum basis. Analytical expressions for the preparation efficiency and for the principal error sources are obtained. Direct extension of the preparation scheme to states containing single or multiple quasiholes is discussed.
5+3 pages
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Cited by in corpus (7)
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- How to exploit driving and dissipation to stabilize and manipulate quantum many-body states
- Quantum light from lossy semiconductor Rydberg excitons
- Reservoir Engineering for Classical Nonlinear Fields