Control of dephasing in spin qubits during coherent transport in silicon

Fuente: arXiv
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Main Authors: Feng, MengKe, Yoneda, Jun, Huang, Wister, Su, Yue, Tanttu, Tuomo, Yang, Chih Hwan, Cifuentes, Jesus D., Chan, Kok Wai, Gilbert, William, Leon, Ross C. C., Hudson, Fay E., Itoh, Kohei M., Laucht, Arne, Dzurak, Andrew S., Saraiva, Andre
Format: Preprint
Published: 2022
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author Feng, MengKe
Yoneda, Jun
Huang, Wister
Su, Yue
Tanttu, Tuomo
Yang, Chih Hwan
Cifuentes, Jesus D.
Chan, Kok Wai
Gilbert, William
Leon, Ross C. C.
Hudson, Fay E.
Itoh, Kohei M.
Laucht, Arne
Dzurak, Andrew S.
Saraiva, Andre
author_facet Feng, MengKe
Yoneda, Jun
Huang, Wister
Su, Yue
Tanttu, Tuomo
Yang, Chih Hwan
Cifuentes, Jesus D.
Chan, Kok Wai
Gilbert, William
Leon, Ross C. C.
Hudson, Fay E.
Itoh, Kohei M.
Laucht, Arne
Dzurak, Andrew S.
Saraiva, Andre
contents One of the key pathways towards scalability of spin-based quantum computing systems lies in achieving long-range interactions between electrons and increasing their inter-connectivity. Coherent spin transport is one of the most promising strategies to achieve this architectural advantage. Experimental results have previously demonstrated high fidelity transportation of spin qubits between two quantum dots in silicon and identified possible sources of error. In this theoretical study, we investigate these errors and analyze the impact of tunnel coupling, magnetic field and spin-orbit effects on the spin transfer process. The interplay between these effects gives rise to double dot configurations that include regimes of enhanced decoherence that should be avoided for quantum information processing. These conclusions permit us to extrapolate previous experimental conclusions and rationalize the future design of large scale quantum processors.
format Preprint
id arxiv_https___arxiv_org_abs_2207_11865
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Control of dephasing in spin qubits during coherent transport in silicon
Feng, MengKe
Yoneda, Jun
Huang, Wister
Su, Yue
Tanttu, Tuomo
Yang, Chih Hwan
Cifuentes, Jesus D.
Chan, Kok Wai
Gilbert, William
Leon, Ross C. C.
Hudson, Fay E.
Itoh, Kohei M.
Laucht, Arne
Dzurak, Andrew S.
Saraiva, Andre
Mesoscale and Nanoscale Physics
Quantum Physics
One of the key pathways towards scalability of spin-based quantum computing systems lies in achieving long-range interactions between electrons and increasing their inter-connectivity. Coherent spin transport is one of the most promising strategies to achieve this architectural advantage. Experimental results have previously demonstrated high fidelity transportation of spin qubits between two quantum dots in silicon and identified possible sources of error. In this theoretical study, we investigate these errors and analyze the impact of tunnel coupling, magnetic field and spin-orbit effects on the spin transfer process. The interplay between these effects gives rise to double dot configurations that include regimes of enhanced decoherence that should be avoided for quantum information processing. These conclusions permit us to extrapolate previous experimental conclusions and rationalize the future design of large scale quantum processors.
title Control of dephasing in spin qubits during coherent transport in silicon
topic Mesoscale and Nanoscale Physics
Quantum Physics
url https://arxiv.org/abs/2207.11865