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Double-target BEC atomtronic rotation sensor

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arxiv 2411.06585 v2 pith:33BCATQM submitted 2024-11-10 cond-mat.quant-gas quant-ph

classification cond-mat.quant-gasquant-ph
keywords arraydouble-targetbecssensorstepmemberomegaring
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

We present a proof-of-concept design for an atomtronic rotation sensor consisting of an array of ``double-target'' Bose-Einstein condensates (BECs). A ``target'' BEC is a disk-shaped condensate surrounded by a concentric ring-shaped condensate. A ``double-target'' BEC is two adjacent target BECs whose ring condensates partially overlap. The sensor consists of an $n\times m$ array of these double-target BECs. The measurement of the frame rotation speed, $\Omega_{R}$, is carried out by creating the array of double-target BECs (setup step), inducing one unit of quantized flow in the top ring of each member of the array (initialization step), applying potential barriers in the overlap region of each member (measurement step), and observing whether the induced flow is transferred from the top to the bottom ring in each member (readout step). We describe a set of simulations showing that a single instance of a double-target BEC behaves in a way that enables the efficient operation of an $n\times m$ array for measuring $\Omega_{R}$. As an example of sensor operation we present a simulation showing that a 2$\times$2 array can be designed to measure $\Omega_{R}$ in a user-specified range.

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  1. Dipolar magnetostirring protocol for three-well atomtronic circuits

    cond-mat.quant-gas 2025-01 conditional novelty 6.0 of 10

    A rotating magnetic polarization protocol creates persistent azimuthal circulation in a three-well ring of dipolar bosons, with optimal frequencies predictable by a (N-1)U/J scaling relation.

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