Fast quantum gates for exchange-only qubits using simultaneous exchange pulses

Fuente: arXiv
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Bibliographic Details
Main Authors: Heinz, Irina, Borjans, Felix, Curry, Matthew J., Kotlyar, Roza, Luthi, Florian, Mądzik, Mateusz T., Mohiyaddin, Fahd A., Bishop, Nathaniel, Burkard, Guido
Format: Preprint
Published: 2024
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author Heinz, Irina
Borjans, Felix
Curry, Matthew J.
Kotlyar, Roza
Luthi, Florian
Mądzik, Mateusz T.
Mohiyaddin, Fahd A.
Bishop, Nathaniel
Burkard, Guido
author_facet Heinz, Irina
Borjans, Felix
Curry, Matthew J.
Kotlyar, Roza
Luthi, Florian
Mądzik, Mateusz T.
Mohiyaddin, Fahd A.
Bishop, Nathaniel
Burkard, Guido
contents The benefit of exchange-only qubits compared to other spin qubit types is the universal control using only voltage controlled exchange interactions between neighboring spins. As a compromise, qubit operations have to be constructed from non-orthogonal rotation axes of the Bloch sphere and result in rather long pulsing sequences. This paper aims to develop a faster implementation of single-qubit gates using simultaneous exchange pulses and manifests their potential for the construction of two-qubit gates. We introduce pulse sequences in which single-qubit gates could be executed faster and show that subsequences on three spins in two-qubit gates could be implemented in fewer steps. Our findings can particularly speed up gate sequences for realistic idle times between sequential pulses and we show that this advantage increases with more interconnectivity of the quantum dots. We further demonstrate how a phase operation can introduce a relative phase between the computational and some of the leakage states, which can be advantageous for the construction of two-qubit gates. In addition to our theoretical analysis, we experimentally demonstrate and characterize a simultaneous exchange implementation of $X$ rotations in a SiGe quantum dot device and compare to the state of the art with sequential exchange pulses.
format Preprint
id arxiv_https___arxiv_org_abs_2409_05843
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Fast quantum gates for exchange-only qubits using simultaneous exchange pulses
Heinz, Irina
Borjans, Felix
Curry, Matthew J.
Kotlyar, Roza
Luthi, Florian
Mądzik, Mateusz T.
Mohiyaddin, Fahd A.
Bishop, Nathaniel
Burkard, Guido
Quantum Physics
Other Condensed Matter
The benefit of exchange-only qubits compared to other spin qubit types is the universal control using only voltage controlled exchange interactions between neighboring spins. As a compromise, qubit operations have to be constructed from non-orthogonal rotation axes of the Bloch sphere and result in rather long pulsing sequences. This paper aims to develop a faster implementation of single-qubit gates using simultaneous exchange pulses and manifests their potential for the construction of two-qubit gates. We introduce pulse sequences in which single-qubit gates could be executed faster and show that subsequences on three spins in two-qubit gates could be implemented in fewer steps. Our findings can particularly speed up gate sequences for realistic idle times between sequential pulses and we show that this advantage increases with more interconnectivity of the quantum dots. We further demonstrate how a phase operation can introduce a relative phase between the computational and some of the leakage states, which can be advantageous for the construction of two-qubit gates. In addition to our theoretical analysis, we experimentally demonstrate and characterize a simultaneous exchange implementation of $X$ rotations in a SiGe quantum dot device and compare to the state of the art with sequential exchange pulses.
title Fast quantum gates for exchange-only qubits using simultaneous exchange pulses
topic Quantum Physics
Other Condensed Matter
url https://arxiv.org/abs/2409.05843