Two-qubit entangling gates within arbitrarily long chains of trapped ions

dc.contributor.author

Landsman, KA

dc.contributor.author

Wu, Y

dc.contributor.author

Leung, PH

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Zhu, D

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Linke, NM

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Brown, KR

dc.contributor.author

Duan, L

dc.contributor.author

Monroe, C

dc.date.accessioned

2022-05-02T14:08:17Z

dc.date.available

2022-05-02T14:08:17Z

dc.date.issued

2019-08-26

dc.date.updated

2022-05-02T14:08:16Z

dc.description.abstract

Ion trap quantum computers are based on modulating the Coulomb interaction between atomic ion qubits using external forces. However, the spectral crowding of collective motional modes could pose a challenge to the control of such interactions for large numbers of qubits. Here, we show that high-fidelity quantum gate operations are still possible with very large trapped ion crystals by using a small and fixed number of motional modes, simplifying the scaling of ion trap quantum computers. We present analytical work that shows that gate operations need not couple to the motion of distant ions, allowing parallel entangling gates with a crosstalk error that falls off as the inverse cube of the distance between the pairs. We also experimentally demonstrate high-fidelity entangling gates on a fully connected set of seventeen Yb+171 qubits using simple laser pulse shapes that primarily couple to just a few modes.

dc.identifier.issn

2469-9926

dc.identifier.issn

2469-9934

dc.identifier.uri

https://hdl.handle.net/10161/24970

dc.language

en

dc.publisher

American Physical Society (APS)

dc.relation.ispartof

Physical Review A

dc.relation.isversionof

10.1103/PhysRevA.100.022332

dc.subject

Science & Technology

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Physical Sciences

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Optics

dc.subject

Physics, Atomic, Molecular & Chemical

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Physics

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PHASE-TRANSITIONS

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QUANTUM

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ENTANGLEMENT

dc.title

Two-qubit entangling gates within arbitrarily long chains of trapped ions

dc.type

Journal article

duke.contributor.orcid

Linke, NM|0000-0001-5655-9258

duke.contributor.orcid

Brown, KR|0000-0001-7716-1425

pubs.issue

2

pubs.organisational-group

Duke

pubs.organisational-group

Pratt School of Engineering

pubs.organisational-group

Trinity College of Arts & Sciences

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Electrical and Computer Engineering

pubs.organisational-group

Chemistry

pubs.organisational-group

Physics

pubs.publication-status

Published

pubs.volume

100

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