Universal quantum gates using nuclear spin qubits in an optical tweezer array of <sup>171</sup>Yb atoms
ORAL
Abstract
Rydberg-mediated entanglement between neutral atoms in optical tweezer arrays is a rapidly developing platform for quantum science. An emerging frontier within this field is the use of alkaline earth-like atoms (AEAs) such as ytterbium (Yb). The rich internal structure of these atoms affords numerous unique capabilities, including narrow-line cooling and imaging [1], an optically active ion core for Rydberg state trapping [2] and gate addressing [3], and, in fermionic isotopes, highly coherent qubit storage in the nuclear spin. In this talk, we present a universal set of quantum gate operations on a qubit in the I=½ nucleus of 171Yb [4]. We observe long qubit coherence times, T2* = 1.24(5) s due to the negligible differential light shift on the qubit state from the optical tweezer. We also demonstrate single-qubit gate operations with a randomized benchmarking fidelity F1Q = 0.99959(6), as well as entangling gates through the Rydberg state.
[1] S Saskin et al. PRL 122, 143002 (2019)
[2] J Wilson et al. PRL 128, 033201 (2022)
[3] A P Burgers et al. arXiv: 2110.06902 (2021)
[4] S Ma et al. arXiv: 2112.06799 (2021)
[1] S Saskin et al. PRL 122, 143002 (2019)
[2] J Wilson et al. PRL 128, 033201 (2022)
[3] A P Burgers et al. arXiv: 2110.06902 (2021)
[4] S Ma et al. arXiv: 2112.06799 (2021)
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Presenters
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Shuo Ma
Princeton University
Authors
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Shuo Ma
Princeton University
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Alex Burgers
Princeton University, Princeton
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Genyue Liu
Princeton University
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Jack Wilson
Princeton University
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Bichen Zhang
Princeton University
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Miguel Alarcon
Purdue University
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Chris H Greene
Purdue University, Department of physics and astronomy, Purdue university
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Jeff D Thompson
Princeton University