Cavity-mediated cooling of a trapped Λ -type three-level atom using a standing-wave laser field

Zhen Yi, Gao‐xiang Li, Yaping Yang · Physical Review A · 2013

We propose a ground-state cavity-mediated cooling scheme for a trapped atom, which is in the $\ensuremath{\Lambda}$ configuration and confined inside a high-finesse optical cavity, using a standing-wave cooling laser. The carrier transition can be prohibited by placing the atom at the node of the cavity field, and the blue-sideband transition can be simultaneously eliminated by exploiting quantum interference via tuning the frequency of the cooling laser. As a consequence, the ground-state cooling for the trapped atom can be achieved. Moreover, we numerically demonstrate the superiority by placing the atom at the antinode of the standing-wave cooling laser as compared with the running-wave cooling laser, and the robustness of the scheme using the standing-wave laser. Meanwhile, the cooling rate can reach the same order of magnitude as that obtained in the cavity--electromagnetically-induced-transparency cooling scheme, and the explicit expression for the final phonon number in higher order is also presented.

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