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- W1970672020 abstract "The optimisation of two-dimensional (2D) lattice ion trap geometries for trapped ion quantum simulation is investigated. The geometry is optimised for the highest ratio of ion-ion interaction rate to decoherence rate. To calculate the electric field of such array geometries a numerical simulation based on a Biot-Savart like law method is used. In this article we will focus on square, hexagonal and centre rectangular lattices for optimisation. A method for maximising the homogeneity of trapping site properties over an array is presented for arrays of a range of sizes. We show how both the polygon radii and separations scale to optimise the ratio between the interaction and decoherence rate. The optimal polygon radius and separation for a 2D lattice is found to be a function of the ratio between rf voltage and drive frequency applied to the array. We then provide a case study for 171Yb+ ions to show how a two-dimensional quantum simulator array could be designed." @default.
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- W1970672020 date "2012-08-14" @default.
- W1970672020 modified "2023-10-14" @default.
- W1970672020 title "Optimization of two-dimensional ion trap arrays for quantum simulation" @default.
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- W1970672020 doi "https://doi.org/10.1088/1367-2630/14/8/085009" @default.
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