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      MEMS-based design of a high-finesse fiber cavity integrated with an ion trap

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          Abstract

          We present a numerical study of a MEMS-based design of a fiber cavity integrated with an ion trap system. Each fiber mirror is supported by a microactuator that controls the mirror's position in three dimensions. The mechanical stability is investigated by a feasibility analysis showing that the actuator offers a stable support of the fiber. The actuators move the fibers' positions continuously with a stroke of more than 10 \(\mu\)m, with mechanical resonance frequencies on the order of kHz. A calculation of the trapping potential shows that a separation between ion and fiber consistent with strong ion-cavity coupling is feasible. Our miniaturized ion-photon interface constitutes a viable approach to integrated hardware for quantum information.

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          Strong atom–field coupling for Bose–Einstein condensates in an optical cavity on a chip

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            Millimeter-long fiber Fabry-Perot cavities

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              Photothermal effects in ultra-precisely stabilized tunable microcavities

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                Author and article information

                Journal
                17 July 2019
                Article
                1907.07594
                07969659-2464-433a-84c8-0a1fc87fb00c

                http://creativecommons.org/licenses/by/4.0/

                History
                Custom metadata
                14 pages, 11 figures
                quant-ph physics.app-ph physics.atom-ph

                Quantum physics & Field theory,Technical & Applied physics,Atomic & Molecular physics

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