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Parametrically Activated Entangling Gates Using Transmon Qubits

delete2018-09-24
delete137
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OA
AI
S
Sam Caldwell *
N
Nicolas Didier
C
Colm A. Ryan
E
Eyob A. Sete
A
Alex Hudson
P
Peter J. Karalekas
R
Riccardo Manenti
M
Marcus P. da Silva
R
R. Sinclair
E
Ezer Acala
N
Nasser Alidoust
N
Noel-Iván Toto-Arellano
A
Andrew Bestwick
M
Maxwell Block
B
Benjamin Bloom
A
A. Bradley
C
Cong Dang Bui
L
Lauren Capelluto
R
Rick Chilcott
J
Jeff Cordova
G
Genya Crossman
M
Michael J. Curtis
S
Saniya Deshpande
T
Tristan El Bouayadi
D
Daniel Girshovich
S
Sabrina Hong
K
Kat Kuang
M
Michael Lenihan
T
Tom Manning
A
A. Marchenkov
J
Jayss Marshall
R
R. Maydra
Y
Yuvraj Mohan
W
William F. O’Brien
C
Chris Osborn
J
Johannes Otterbach
A
Alexander Papageorge
J
Jean-Philip Paquette
M
Michael Pelstring
A
Anthony Polloreno
G
Guen Prawiroatmodjo
R
Rawat, V.
M
Matthew J. Reagor
R
Russ Renzas
N
Nick Rubin
M
Michael Rust
D
Diego Scarabelli
M
Michael G. Scheer
M
Michael Selvanayagam
R
Robert Smith
A
A. Staley
M
Mark Suska
N
Nikolas Tezak
D
D.C. Thompson
T
T.-W. To
M
Mehrnoosh Vahidpour
N
Nagesh Vodrahalli
T
Tyler Whyland
K
Kamal Yadav
W
William J. Zeng
C
Chad Rigetti
DOI:10.1103/PhysRevApplied.10.034050delete
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Abstract

Abstract

En 中文
We describe and implement a family of entangling gates activated by radio-frequency flux modulation applied to a tunable transmon that is statically coupled to a neighboring transmon. The effect of this modulation is the resonant exchange of photons directly between levels of the two-transmon system, obviating the need for mediating qubits or resonator modes and allowing for the full utilization of all qubits in a scalable architecture. The resonance condition is selective in both the frequency and amplitude of modulation and thus alleviates frequency crowding. We demonstrate the use of three such resonances to produce entangling gates that enable universal quantum computation: one iSWAP gate and two distinct controlled-Z gates. We report interleaved randomized benchmarking results indicating gate error rates of 6% for the iSWAP (duration 135 ns) and 9% for the controlled-Z gates (durations 175 and 270 ns), limited largely by qubit coherence.
Keywords:
QUANTUM
FIDELITY
STATE
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Journal

Physical Review Applied cover
Physical Review Applied
IF:
4.4
Papers:
7.1K
Citations:
2.8W

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