Subradiance with saturated atoms: population enhancement of the
long-lived states
- URL: http://arxiv.org/abs/2009.05172v2
- Date: Tue, 15 Sep 2020 01:33:06 GMT
- Title: Subradiance with saturated atoms: population enhancement of the
long-lived states
- Authors: A. Cipris, N. A. Moreira, T. S. do Espirito Santo, P. Weiss, C. J.
Villas-Boas, R. Kaiser, W. Guerin, R. Bachelard
- Abstract summary: Dipole-dipole interactions are at the origin of long-lived collective atomic states, often called subradiant.
We experimentally demonstrate a two hundred-fold increase in the population of these modes, as the saturation parameter of the driving field is increased.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Dipole-dipole interactions are at the origin of long-lived collective atomic
states, often called subradiant, which are explored for their potential use in
novel photonic devices or in quantum protocols. Here, we study subradiance
beyond linear optics and experimentally demonstrate a two hundred-fold increase
in the population of these modes, as the saturation parameter of the driving
field is increased. We attribute this enhancement to a mechanism similar to
optical pumping through the well-coupled superradiant states. The lifetimes are
unaffected by the pump strength, as the system is ultimately driven toward the
single-excitation sector.
Related papers
- Stability and decay of subradiant patterns in a quantum gas with photon-mediated interactions [34.82692226532414]
We study subradiance in a Bose-Einstein condensate positioned at the mode crossing of two optical cavities.
metastable density structures that suppress emission into one cavity mode prevent relaxation to the stationary, superradiant grating.
We reproduce these dynamics by a quantum mean field model, suggesting that subradiance shares characteristics with quasi-stationary states predicted in other long-range interacting systems.
arXiv Detail & Related papers (2024-07-12T12:47:07Z) - Non-Markovian Collective Emission of Giant emitters in the Zeno Regime [0.0]
We explore the collective Zeno dynamics of giant artificial atoms that are coupled, via multiple coupling points, to a common photonic or acoustic reservoir.
We reveal that giant atoms build up their collective emission smoothly from the decay rate of zero to that predicted by Markovian approximation.
Our results might be probed in state-of-art waveguide QED experiments, and fundamentally broaden the fields of collective emission in systems with giant atoms.
arXiv Detail & Related papers (2024-06-21T01:22:40Z) - Directional spontaneous emission in photonic crystal slabs [49.1574468325115]
Spontaneous emission is a fundamental out-of-equilibrium process in which an excited quantum emitter relaxes to the ground state due to quantum fluctuations.
One way to modify these photon-mediated interactions is to alter the dipole radiation patterns of the emitter, e.g., by placing photonic crystals near them.
Our study delves into the interaction between these directional emission patterns and the aforementioned variables, revealing the untapped potential to fine-tune collective quantum optical phenomena.
arXiv Detail & Related papers (2023-12-04T15:35:41Z) - Breakdown of steady-state superradiance in extended driven atomic arrays [0.0]
We show how light-shifts and decay rates induced by dipole-dipole interactions modify the steady-state properties of coherently driven arrays of quantum emitters.
We find that diverging from the well-established Dicke paradigm of equal all-to-all interactions significantly modifies the emission properties.
arXiv Detail & Related papers (2023-11-17T19:04:14Z) - Observation of superradiant bursts in a cascaded quantum system [0.0]
Dicke superradiance describes the collective radiative decay of a fully inverted ensemble of two-level atoms.
We experimentally investigate this effect for a chiral, i.e.,direction-dependent light--matter coupling.
Our results shed light on the collective radiative dynamics of cascaded quantum many-body systems.
arXiv Detail & Related papers (2022-11-16T14:36:10Z) - Superradiance and Subradiance in Dense Atomic Gases: An Integrated Method [0.0]
We introduce an integrated method for studying cooperative radiation in many-body systems.
We apply this method to a homogeneous gas of initially inverted two-level atoms.
We show the appearance of both superradiance and subradiance, and identify a many-body coherence term as the source of these cooperative effects.
arXiv Detail & Related papers (2022-05-30T17:04:12Z) - Correlated steady states and Raman lasing in continuously pumped and
probed atomic ensembles [68.8204255655161]
We consider an ensemble of Alkali atoms that are continuously optically pumped and probed.
Due to the collective scattering of photons at large optical depth, the steady state of atoms does not correspond to an uncorrelated tensor-product state.
We find and characterize regimes of Raman lasing, akin to the model of a superradiant laser.
arXiv Detail & Related papers (2022-05-10T06:54:54Z) - Self-oscillating pump in a topological dissipative atom-cavity system [55.41644538483948]
We report on an emergent mechanism for pumping in a quantum gas coupled to an optical resonator.
Due to dissipation, the cavity field evolves between its two quadratures, each corresponding to a different centrosymmetric crystal configuration.
This self-oscillation results in a time-periodic potential analogous to that describing the transport of electrons in topological tight-binding models.
arXiv Detail & Related papers (2021-12-21T19:57:30Z) - Dimerization of many-body subradiant states in waveguide quantum
electrodynamics [137.6408511310322]
We study theoretically subradiant states in the array of atoms coupled to photons propagating in a one-dimensional waveguide.
We introduce a generalized many-body entropy of entanglement based on exact numerical diagonalization.
We reveal the breakdown of fermionized subradiant states with increase of $f$ with emergence of short-ranged dimerized antiferromagnetic correlations.
arXiv Detail & Related papers (2021-06-17T12:17:04Z) - Subradiance in dilute atomic ensembles: Role of pairs and multiple
scattering [0.0]
We study the slow (subradiant) decay of the fluorescence of motionless atoms after a weak pulsed excitation.
We show that, in the linear-optics regime, the slow decay rate can be dominated by close pairs of atoms forming superradiant and subradiant states.
For a large-enough resonant optical depth and at later time, the dynamics is dominated by collective many-body effects.
arXiv Detail & Related papers (2020-12-19T11:10:04Z) - Collective spontaneous emission of two entangled atoms near an
oscillating mirror [50.591267188664666]
We consider the cooperative spontaneous emission of a system of two identical atoms, interacting with the electromagnetic field in the vacuum state.
Using time-dependent theory, we investigate the spectrum of the radiation emitted by the two-atom system.
We show that it is modulated in time, and that the presence of the oscillating mirror can enhance or inhibit the decay rate.
arXiv Detail & Related papers (2020-10-07T06:48:20Z) - Collective radiation from distant emitters [63.391402501241195]
We show that the spectrum of the radiated field exhibits non-Markovian features such as linewidth broadening beyond standard superradiance.
We discuss a proof-of-concept implementation of our results in a superconducting circuit platform.
arXiv Detail & Related papers (2020-06-22T19:03:52Z)
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.