Robust 2-Qubit Gates in a Linear Ion Crystal Using a Frequency-Modulated Driving Force.

dc.contributor.author

Leung, Pak Hong

dc.contributor.author

Landsman, Kevin A

dc.contributor.author

Figgatt, Caroline

dc.contributor.author

Linke, Norbert M

dc.contributor.author

Monroe, Christopher

dc.contributor.author

Brown, Kenneth R

dc.date.accessioned

2022-05-02T14:07:19Z

dc.date.available

2022-05-02T14:07:19Z

dc.date.issued

2018-01

dc.date.updated

2022-05-02T14:07:18Z

dc.description.abstract

In an ion trap quantum computer, collective motional modes are used to entangle two or more qubits in order to execute multiqubit logical gates. Any residual entanglement between the internal and motional states of the ions results in loss of fidelity, especially when there are many spectator ions in the crystal. We propose using a frequency-modulated driving force to minimize such errors. In simulation, we obtained an optimized frequency-modulated 2-qubit gate that can suppress errors to less than 0.01% and is robust against frequency drifts over ±1  kHz. Experimentally, we have obtained a 2-qubit gate fidelity of 98.3(4)%, a state-of-the-art result for 2-qubit gates with five ions.

dc.identifier.issn

0031-9007

dc.identifier.issn

1079-7114

dc.identifier.uri

https://hdl.handle.net/10161/24969

dc.language

eng

dc.publisher

American Physical Society (APS)

dc.relation.ispartof

Physical review letters

dc.relation.isversionof

10.1103/physrevlett.120.020501

dc.subject

Science & Technology

dc.subject

Physical Sciences

dc.subject

Physics, Multidisciplinary

dc.subject

Physics

dc.subject

TRAPPED IONS

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SPEED

dc.title

Robust 2-Qubit Gates in a Linear Ion Crystal Using a Frequency-Modulated Driving Force.

dc.type

Journal article

duke.contributor.orcid

Linke, Norbert M|0000-0001-5655-9258

duke.contributor.orcid

Brown, Kenneth R|0000-0001-7716-1425

pubs.begin-page

020501

pubs.issue

2

pubs.organisational-group

Duke

pubs.organisational-group

Pratt School of Engineering

pubs.organisational-group

Trinity College of Arts & Sciences

pubs.organisational-group

Electrical and Computer Engineering

pubs.organisational-group

Chemistry

pubs.organisational-group

Physics

pubs.publication-status

Published

pubs.volume

120

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