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Collectively enhanced ground-state cooling in subwavelength atomic arrays
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Subwavelength atomic arrays feature strong light-induced dipole-dipole interactions, resulting in subradiant collective resonances characterized by narrowed linewidths. In this work, we present a sideband cooling scheme for atoms trapped in subwavelength arrays that utilizes these narrow collective resonances. Working in the Lamb-Dicke regime, we derive an effective master equation for the atomic motion by adiabatically eliminating the internal degrees of freedom of the atoms, and validate its prediction with numerical simulations of the full system. Our results demonstrate that subradiant resonances enable the cooling of ensembles of atoms to temperatures lower than those achievable without dipole interactions, provided the atoms have different trap frequencies. Remarkably, narrow collective resonances can be sideband-resolved even when the individual atomic transition is not. In such scenarios, ground-state cooling becomes feasible solely due to light-induced dipole-dipole interactions. This approach could be utilized for future quantum technologies based on dense ensembles of emitters, and paves the way towards harnessing many-body cooperative decay for enhanced motional control.
Forward citations
Cited by 2 Pith papers
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Effects of finite trapping on the decay, recoil, and decoherence of dark states of quantum emitter arrays
Finite trap strength makes subradiant atomic-array dark states decay faster over time, heat up, and lose fidelity; infidelity scales as (γ0η/ωt)^2 and is minimized with strong traps and perpendicular polarization.
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Hybrid sub- and superradiant states in emitter arrays with quantized motion
Quantized atomic motion creates hybrid spin-phonon sub- and superradiant states in emitter arrays, with some states remaining separable and unaffected by motion at specific lattice spacings.
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