Coupling a Surface Acoustic Wave to an Electron Spin in Diamond via a Dark State

The emerging field of quantum acoustics explores interactions between acoustic waves and artificial atoms and their applications in quantum information processing. In this experimental study, we demonstrate the coupling between a surface acoustic wave (SAW) and an electron spin in diamond by taking...

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Main Authors: D. Andrew Golter, Thein Oo, Mayra Amezcua, Ignas Lekavicius, Kevin A. Stewart, Hailin Wang
Format: Article
Language:English
Published: American Physical Society 2016-12-01
Series:Physical Review X
Online Access:http://doi.org/10.1103/PhysRevX.6.041060
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spelling doaj-650f41a97fd04e4cb28135ff987283802020-11-24T23:15:49ZengAmerican Physical SocietyPhysical Review X2160-33082016-12-016404106010.1103/PhysRevX.6.041060Coupling a Surface Acoustic Wave to an Electron Spin in Diamond via a Dark StateD. Andrew GolterThein OoMayra AmezcuaIgnas LekaviciusKevin A. StewartHailin WangThe emerging field of quantum acoustics explores interactions between acoustic waves and artificial atoms and their applications in quantum information processing. In this experimental study, we demonstrate the coupling between a surface acoustic wave (SAW) and an electron spin in diamond by taking advantage of the strong strain coupling of the excited states of a nitrogen vacancy center while avoiding the short lifetime of these states. The SAW-spin coupling takes place through a Λ-type three-level system where two ground spin states couple to a common excited state through a phonon-assisted as well as a direct dipole optical transition. Both coherent population trapping and optically driven spin transitions have been realized. The coherent population trapping demonstrates the coupling between a SAW and an electron spin coherence through a dark state. The optically driven spin transitions, which resemble the sideband transitions in a trapped-ion system, can enable the quantum control of both spin and mechanical degrees of freedom and potentially a trapped-ion-like solid-state system for applications in quantum computing. These results establish an experimental platform for spin-based quantum acoustics, bridging the gap between spintronics and quantum acoustics.http://doi.org/10.1103/PhysRevX.6.041060
collection DOAJ
language English
format Article
sources DOAJ
author D. Andrew Golter
Thein Oo
Mayra Amezcua
Ignas Lekavicius
Kevin A. Stewart
Hailin Wang
spellingShingle D. Andrew Golter
Thein Oo
Mayra Amezcua
Ignas Lekavicius
Kevin A. Stewart
Hailin Wang
Coupling a Surface Acoustic Wave to an Electron Spin in Diamond via a Dark State
Physical Review X
author_facet D. Andrew Golter
Thein Oo
Mayra Amezcua
Ignas Lekavicius
Kevin A. Stewart
Hailin Wang
author_sort D. Andrew Golter
title Coupling a Surface Acoustic Wave to an Electron Spin in Diamond via a Dark State
title_short Coupling a Surface Acoustic Wave to an Electron Spin in Diamond via a Dark State
title_full Coupling a Surface Acoustic Wave to an Electron Spin in Diamond via a Dark State
title_fullStr Coupling a Surface Acoustic Wave to an Electron Spin in Diamond via a Dark State
title_full_unstemmed Coupling a Surface Acoustic Wave to an Electron Spin in Diamond via a Dark State
title_sort coupling a surface acoustic wave to an electron spin in diamond via a dark state
publisher American Physical Society
series Physical Review X
issn 2160-3308
publishDate 2016-12-01
description The emerging field of quantum acoustics explores interactions between acoustic waves and artificial atoms and their applications in quantum information processing. In this experimental study, we demonstrate the coupling between a surface acoustic wave (SAW) and an electron spin in diamond by taking advantage of the strong strain coupling of the excited states of a nitrogen vacancy center while avoiding the short lifetime of these states. The SAW-spin coupling takes place through a Λ-type three-level system where two ground spin states couple to a common excited state through a phonon-assisted as well as a direct dipole optical transition. Both coherent population trapping and optically driven spin transitions have been realized. The coherent population trapping demonstrates the coupling between a SAW and an electron spin coherence through a dark state. The optically driven spin transitions, which resemble the sideband transitions in a trapped-ion system, can enable the quantum control of both spin and mechanical degrees of freedom and potentially a trapped-ion-like solid-state system for applications in quantum computing. These results establish an experimental platform for spin-based quantum acoustics, bridging the gap between spintronics and quantum acoustics.
url http://doi.org/10.1103/PhysRevX.6.041060
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