Scaling of Large-Sample Collective Decay in Inhomogeneous Ensembles
arXiv:2307.11623 · doi:10.1103/PhysRevResearch.6.013091
Abstract
We experimentally study collective decay of an extended disordered ensemble of atoms inside a hollow-core fiber. We observe up to -fold enhanced decay rates, strong optical bursts and a coherent ringing. Due to inhomogeneities limiting the synchronization of atoms, the data does not show the typical scaling with . We show that an effective number of collective emitters can be determined to recover the scaling known to homogeneous ensembles over a large parameter range. This provides physical insight into the limits of collective decay and allows for its optimization in extended ensembles as used, e.g., in quantum optics, precision time-keeping or waveguide QED.
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