Spectral asymmetry of atoms in the van der Waals potential of an optical nanofiber

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Abstract

We measure the modification of the transmission spectra of cold Rb87 atoms in the proximity of an optical nanofiber (ONF). Van der Waals interactions between the atoms an the ONF surface decrease the resonance frequency of atoms closer to the surface. An asymmetric spectra of the atoms holds information of their spatial distribution around the ONF. We use a far-detuned laser beam coupled to the ONF to thermally excite atoms at the ONF surface. We study the change of transmission spectrum of these atoms as a function of heating laser power. A semiclassical phenomenological model for the thermal excitation of atoms in the atom-surface van der Waals bound states is in good agreement with the measurements. This result suggests that van der Waals potentials could be used to trap and probe atoms at few nanometers from a dielectric surface, a key tool for hybrid photonic-atomic quantum systems.

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Patterson, B. D., Solano, P., Julienne, P. S., Orozco, L. A., & Rolston, S. L. (2018). Spectral asymmetry of atoms in the van der Waals potential of an optical nanofiber. Physical Review A, 97(3). https://doi.org/10.1103/PhysRevA.97.032509

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