Cooling and state preparation in an optical lattice via Markovian
feedback control
- URL: http://arxiv.org/abs/2106.03883v3
- Date: Sat, 2 Oct 2021 16:17:30 GMT
- Title: Cooling and state preparation in an optical lattice via Markovian
feedback control
- Authors: Ling-Na Wu, Andr\'e Eckardt
- Abstract summary: We propose and investigate a scheme based on Markovian feedback control that allows for the preparation of single targeted eigenstates of a system of bosonic atoms in a one-dimensional optical lattice with high fidelity.
It can be used for in-situ cooling the interacting system without particle loss, both for weak and strong interactions, and for experimentally preparing and probing individual excited eigenstates.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We propose and investigate a scheme based on Markovian feedback control that
allows for the preparation of single targeted eigenstates of a system of
bosonic atoms in a one-dimensional optical lattice with high fidelity. It can
be used for in-situ cooling the interacting system without particle loss, both
for weak and strong interactions, and for experimentally preparing and probing
individual excited eigenstates. For that purpose the system is assumed to be
probed weakly via homodyne detection of photons that are scattered
off-resonantly by the atoms from a structured probe beam into a cavity mode. By
applying an inertial force to the system that is proportional to the measured
signal, the system is then guided into a pure target state. The scheme is found
to be robust against reduced measurement efficiencies.
Related papers
- Autonomous Stabilization of Floquet States Using Static Dissipation [0.0]
Floquet engineering, in which the properties of a quantum system are modified through the application of strong periodic drives, is an indispensable tool in atomic and condensed matter systems.
We describe a simple autonomous scheme, which exploits a static coupling between the driven system and a lossy auxiliary, to cool large classes of Floquet systems into desired states.
arXiv Detail & Related papers (2024-10-16T18:00:02Z) - Detection of radiatively open systems using an optical cavity [0.0]
We experimentally demonstrate a cavity-based detection scheme for a cold atomic ensemble with a radiatively open transition.
Compared with the most commonly used fluorescence method, we show that the cavity-based scheme allows rapid and prolonged detection of the system's evolution.
arXiv Detail & Related papers (2024-09-09T09:17:00Z) - Limits for coherent optical control of quantum emitters in layered
materials [49.596352607801784]
coherent control of a two-level system is among the most essential challenges in modern quantum optics.
We use a mechanically isolated quantum emitter in hexagonal boron nitride to explore the individual mechanisms which affect the coherence of an optical transition under resonant drive.
New insights on the underlying physical decoherence mechanisms reveals a limit in temperature until which coherent driving of the system is possible.
arXiv Detail & Related papers (2023-12-18T10:37:06Z) - Stochastic Mean-field Theory for Conditional Spin Squeezing by Homodyne
Probing of Atom-Cavity Photon Dressed States [7.382089528638367]
We present a variant of cumulant mean-field theory to simulate the effect of continuous optical probing of an atomic ensemble.
We apply the theory to a system with tens of thousands of rubidium-87 atom in an optical cavity.
arXiv Detail & Related papers (2023-06-01T16:25:30Z) - Evolution of many-body systems under ancilla quantum measurements [58.720142291102135]
We study the concept of implementing quantum measurements by coupling a many-body lattice system to an ancillary degree of freedom.
We find evidence of a disentangling-entangling measurement-induced transition as was previously observed in more abstract models.
arXiv Detail & Related papers (2023-03-13T13:06:40Z) - Coherent feedback in optomechanical systems in the sideband-unresolved
regime [0.0]
experimentally interesting scheme, based on coherent feedback with linear, passive optical components.
We find that, by introducing an additional passive element, an optomechanical system in the deeply sideband-unresolved regime will exhibit dynamics similar to one that is sideband-resolved.
With this new approach, the experimental realization of groundstate cooling and optomechanical entanglement is well within reach of current integrated state-of-the-art high-Q mechanical resonators.
arXiv Detail & Related papers (2022-06-28T11:49:58Z) - Connecting steady-states of driven-dissipative photonic lattices with
spontaneous collective emission phenomena [91.3755431537592]
We use intuition to predict the formation of non-trivial photonic steady-states in one and two dimensions.
We show that subradiant emitter configurations are linked to the emergence of steady-state light-localization in the driven-dissipative setting.
These results shed light on the recently reported optically-defined cavities in polaritonic lattices.
arXiv Detail & Related papers (2021-12-27T23:58:42Z) - Deterministic preparation of optical qubits with coherent feedback
control [0.0]
We propose a class of preparation schemes for orbital angular momentum and polarisation qubits carried by single photons or classical states of light.
The preparation methods use linear optics and include the transcription of an arbitrary polarisation state onto a two-level OAM system.
We show how to translate measurement-based qubit control channels into coherent feedback schemes for optical implementation.
arXiv Detail & Related papers (2021-09-17T16:47:29Z) - A low-loss ferrite circulator as a tunable chiral quantum system [108.66477491099887]
We demonstrate a low-loss waveguide circulator constructed with single-crystalline yttrium iron garnet (YIG) in a 3D cavity.
We show the coherent coupling of its chiral internal modes with integrated superconducting niobium cavities.
We also probe experimentally the effective non-Hermitian dynamics of this system and its effective non-reciprocal eigenmodes.
arXiv Detail & Related papers (2021-06-21T17:34:02Z) - Visualizing spinon Fermi surfaces with time-dependent spectroscopy [62.997667081978825]
We propose applying time-dependent photo-emission spectroscopy, an established tool in solid state systems, in cold atom quantum simulators.
We show in exact diagonalization simulations of the one-dimensional $t-J$ model that the spinons start to populate previously unoccupied states in an effective band structure.
The dependence of the spectral function on the time after the pump pulse reveals collective interactions among spinons.
arXiv Detail & Related papers (2021-05-27T18:00:02Z) - Tunable Anderson Localization of Dark States [146.2730735143614]
We experimentally study Anderson localization in a superconducting waveguide quantum electrodynamics system.
We observe an exponential suppression of the transmission coefficient in the vicinity of its subradiant dark modes.
The experiment opens the door to the study of various localization phenomena on a new platform.
arXiv Detail & Related papers (2021-05-25T07:52:52Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.