Scalable, high-fidelity all-electronic control of trapped-ion qubits
ORAL
Abstract
The central challenge of quantum computing is implementing high-fidelity quantum gates in a scalable fashion. Our all-electronic qubit control architecture combines laser-free gates with local tuning of electric potentials to enable site-selective single- and two-qubit operations in multi-zone quantum processors. Chip-integrated antennas deliver control fields common to all qubits, while voltages applied to local tuning electrodes adjust the position and motion of ions in each zone, thus enabling local coherent control. We experimentally implement low-noise, site-selective single- and two-qubit control in a microfabricated 7-zone ion trap, demonstrating 99.99916(7)% fidelity for single-qubit gates, and two-qubit Bell state generation with 99.97(1)% fidelity. These results validate the path to directly scaling these techniques to large-scale quantum computers based on electronically controlled trapped-ion qubits.
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Publication: arXiv:2407.07694 [quant-ph]
Presenters
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Jacopo Mosca Toba
Oxford Ionics
Authors
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Jacopo Mosca Toba
Oxford Ionics
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Clemens M Löschnauer
Oxford Ionics
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Amy C Hughes
Oxford Ionics
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Steven King
Oxford Ionics Ltd
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Marius Weber
Oxford Ionics
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raghavendra srinivas
Oxford Ionics
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Roland Matt
Oxford Ionics
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Rustin Nourshargh
Oxford Ionics
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David Thomas Charles Allcock
Oxford Ionics
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Chris Ballance
Oxford Ionics
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Clemens Matthiesen
Oxford Ionics
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Maciej Malinowski
Oxford Ionics
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Thomas Harty
Oxford Ionics