Light scattering from dense cold atomic media
arXiv:1605.06219 · doi:10.1103/PhysRevA.94.023612
Abstract
We theoretically study the propagation of light through a cold atomic medium, where the effects of motion, laser intensity, atomic density, and polarization can all modify the properties of the scattered light. We present two different microscopic models: the "coherent dipole model" and the "random walk model", both suitable for modeling recent experimental work done in large atomic arrays in the low light intensity regime. We use them to compute relevant observables such as the linewidth, peak intensity and line center of the emitted light. We further develop generalized models that explicitly take into account atomic motion. Those are relevant for hotter atoms and beyond the low intensity regime. We show that atomic motion can lead to drastic dephasing and to a reduction of collective effects, together with a distortion of the lineshape. Our results are applicable to model a full gamut of quantum systems that rely on atom-light interactions including atomic clocks, quantum simulators and nanophotonic systems.
References in corpus (10)
- The Quantum Internet
- Electromagnetically Induced Transparency and Slow Light with Optomechanics
- Collective atomic scattering and motional effects in a dense coherent medium
- Coherent scattering of near-resonant light by a Dense Microscopic Cold Atomic cloud
- Long-range interacting many-body systems with alkaline-earth-metal atoms
- Anomalous broadening in driven dissipative Rydberg systems
- Optical resonance shifts in the fluorescence of thermal and cold atomic gases
- Coherent Forward Broadening in Cold Atom Clouds
- Light transport in cold atoms and thermal decoherence
- Master equation for collective spontaneous emission with quantized atomic motion
Cited by in corpus (55)
- Open quantum systems with local and collective incoherent processes: Efficient numerical simulation using permutational invariance
- Coherent Scattering of Near-Resonant Light by a Dense, Microscopic Cloud of Cold Two-Level Atoms: Experiment versus Theory
- Chirality, Band Structure and Localization in Waveguide Quantum Electrodynamics
- Beyond lowest order mean field theory for light interacting with atom arrays
- Exact electrodynamics versus standard optics for a slab of cold dense gas
- Phases of driven two-level systems with nonlocal dissipation
- Phase-imprinted multiphoton subradiant states
- Maximum refractive index of an atomic medium
- Light propagation in systems involving two-dimensional atomic lattices
- Exploiting the Photonic Non-linearity of Free Space Subwavelength Arrays of Atoms
- Population of collective modes in light scattering by many atoms
- Collective Excitation Dynamics of a Cold Atom Cloud
- Quantum effects in the cooperative scattering of light by atomic clouds
- Cooperative spontaneous emission from indistinguishable atoms in arbitrary motional quantum states
- The dependent scattering effect on radiative properties of micro/nanoscale discrete disordered media
- Observation of collective decay dynamics of a single Rydberg superatom
- Near-resonant light scattering by a sub-wavelength ensemble of identical atoms
- Quantum metrology in the noisy intermediate-scale quantum era
- Subradiance dynamics in a singly-excited chiral-coupled atomic chain
- Directional superradiance in a driven ultracold atomic gas in free-space
- Cooperative light scattering from helical-phase-imprinted atomic rings
- Spin-polarized fermions with -wave interactions
- Coherent light propagation through cold atomic clouds beyond the independent scattering approximation
- Nonlinear quantum transport of light in a cold atomic cloud
- Van der Waals dephasing for Dicke subradiance in cold atomic clouds
- Stochastic electrodynamics simulations for collective atom response in optical cavities
- Collective effects in the radiation pressure force
- Degenerate Zeeman Ground States in the Single-Excitation Regime
- Selective transport of atomic excitations in a driven chiral-coupled atomic chain
- Atomic spin-wave control and spin-dependent kicks with shaped subnanosecond pulses
- Directional subradiance from helical-phase-imprinted multiphoton states
- Near-resonant light transmission in two-dimensional dense cold atomic media with short-range positional correlations
- Observation of bosonic stimulation in light scattering
- Cooperative spontaneous emission via renormalization approach: Classical versus semi-classical effects
- Particle scattering by harmonically trapped Bose and Fermi gases
- Sensitivity of electromagnetically induced transparency to light-mediated interactions
- Photon-mediated dipole-dipole interactions as a resource for quantum science and technology in cold atoms
- Quantum-coherence-enhanced subradiance in a chiral-coupled atomic chain
- Renormalization group analysis of near-field induced dephasing of optical spin waves in an atomic medium
- Super- and subradiance in dilute disordered cold atomic samples: observations and interpretations
- Photon scattering from a cold, Gaussian atom cloud
- Master equation for multilevel interference in a superradiant medium
- Self-induced cooling of optically bound pairs of atoms
- Super- and Sub-radiance from Two-dimensional Resonant Dipole-dipole Interactions
- Disentangling Pauli blocking of atomic decay from cooperative radiation and atomic motion in a 2D Fermi gas
- Observation of photon recoil effects in single-beam absorption spectroscopy with an ultracold strontium gas
- Towards a measurement of the Debye length in very large Magneto-Optical traps
- Scattering properties of collective dipolar systems
- Analytic solutions for the spatial character and coherence properties of light scattered from two dipole-coupled atoms
- Spectroscopic localization of atomic sample plane for precise digital holography
- Pauli blocking of light scattering in degenerate fermions
- Cooperative effects in dense cold atomic gases including magnetic dipole interactions
- Propagation of light in cold emitter ensembles with quantum position correlations due to static long-range dipolar interactions
- Frequency-comb-induced radiation pressure force in dense atomic clouds
- Metalens formed by structured arrays of atomic emitters