Strong atom-field coupling for Bose-Einstein condensates in an optical cavity on a chip
Yves Colombe, Tilo Steinmetz, Guilhem Dubois, Felix Linke, David, Hunger, Jakob Reichel

TL;DR
This paper demonstrates strong, controllable coupling between a Bose-Einstein condensate and an optical cavity on a chip, enabling new quantum electrodynamics experiments with multiple atoms.
Contribution
The authors integrate a fiber-based cavity with atom chip technology to achieve strong, tunable atom-cavity coupling for BECs, a significant step beyond previous single-atom cQED experiments.
Findings
Achieved vacuum Rabi splittings over 20 GHz.
Demonstrated deterministic positioning of BEC within the cavity.
Observed additional spectral splitting due to hyperfine structure.
Abstract
An optical cavity enhances the interaction between atoms and light, and the rate of coherent atom-photon coupling can be made larger than all decoherence rates of the system. For single atoms, this strong coupling regime of cavity quantum electrodynamics (cQED) has been the subject of spectacular experimental advances, and great efforts have been made to control the coupling rate by trapping and cooling the atom towards the motional ground state, which has been achieved in one dimension so far. For N atoms, the three-dimensional ground state of motion is routinely achieved in atomic Bose-Einstein condensates (BECs), but although first experiments combining BECs and optical cavities have been reported recently, coupling BECs to strong-coupling cavities has remained an elusive goal. Here we report such an experiment, which is made possible by combining a new type of fibre-based cavity…
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