Fourier imaging isolates a ring-shaped superradiant emission pattern from cold 87Rb clouds that matches the most superradiant collective jump operator, with superlinear intensity scaling after spatial filtering.
selective radiance
7 Pith papers cite this work. Polarity classification is still indexing.
representative citing papers
Derives scaling laws for a continuous crossover from non-Markovian coherent emission to Markovian decay in Lieb lattices by engineering bandwidth through lattice symmetry breaking.
Neural quantum states simulate dissipative many-body emission dynamics for approximately 40 atoms in dense 1D and 2D arrays, revealing prominent subradiant behavior at late times.
The maximum photon emission rate in atomic ensembles scales universally as atom number times optical depth at fixed density, unifying ordered and disordered systems from independent emission to the Dicke limit.
Laser-driven cooperative dipole-dipole interactions cause free-space atomic arrays to spontaneously form topologically nontrivial dimerized linear chains and self-contracted or expanded ring geometries even from initial separations larger than the transition wavelength.
Non-Markovian delays in two waveguide-coupled emitters create atom-photon quasi-bound states and multimode interactions that boost quantum Fisher information for sensing field gradients.
Theoretical framework shows magnons emitted from spin defect ensembles into a magnetic bath retain quantum correlations from the emitters, enabling generation of single- and many-body quantum magnonic states.
citing papers explorer
-
Fourier imaging of collective spontaneous emission modes in superradiant cold atomic clouds
Fourier imaging isolates a ring-shaped superradiant emission pattern from cold 87Rb clouds that matches the most superradiant collective jump operator, with superlinear intensity scaling after spatial filtering.
-
From flat to narrow bands: Engineering quantum emission in a one-dimensional Lieb lattice
Derives scaling laws for a continuous crossover from non-Markovian coherent emission to Markovian decay in Lieb lattices by engineering bandwidth through lattice symmetry breaking.
-
Neural network modeling of many-body super- and sub-radiant dynamics
Neural quantum states simulate dissipative many-body emission dynamics for approximately 40 atoms in dense 1D and 2D arrays, revealing prominent subradiant behavior at late times.
-
Optical depth dictates universal bounds on many-body decay in atomic ensembles
The maximum photon emission rate in atomic ensembles scales universally as atom number times optical depth at fixed density, unifying ordered and disordered systems from independent emission to the Dicke limit.
-
Light-induced Self-Organization in Cooperative Free Space Atomic Arrays
Laser-driven cooperative dipole-dipole interactions cause free-space atomic arrays to spontaneously form topologically nontrivial dimerized linear chains and self-contracted or expanded ring geometries even from initial separations larger than the transition wavelength.
-
Non-Markovian delay-assisted sensing with waveguide-coupled quantum emitters
Non-Markovian delays in two waveguide-coupled emitters create atom-photon quasi-bound states and multimode interactions that boost quantum Fisher information for sensing field gradients.
-
Generating single- and many-body quantum magnonic states
Theoretical framework shows magnons emitted from spin defect ensembles into a magnetic bath retain quantum correlations from the emitters, enabling generation of single- and many-body quantum magnonic states.