Expand this Topic clickable element to expand a topic
Skip to content
Optica Publishing Group

Controlling coherence time of silicon vacancy centers in diamond using phononic crystals

Not Accessible

Your library or personal account may give you access

Abstract

We design and fabricate phononic crystals in single-crystal diamond hosting silicon vacancy centers. The complete bandgap in the phononic crystals aims to improve coherence of optical transitions in silicon vacancy centers by suppressing phonon-driven processes.

© 2021 The Author(s)

PDF Article  |   Presentation Video
More Like This
Diamond Phononic Crystals with Silicon-Vacancy Centers at Cryogenic Temperatures

Graham Joe, Cleaven Chia, Michelle Chalupnik, Benjamin Pingault, Srujan Meesala, Eliza Cornell, Daniel Assumpcao, Bartholomeus Machielse, and Marko Lončar
FTh4M.1 CLEO: QELS_Fundamental Science (CLEO:FS) 2021

Engineering spin-phonon coupling rates for the silicon vacancy center in diamond phononic crystal cavities

Cleaven Chia, Michelle Chalupnik, and Marko Lončar
JW4L.1 CLEO: Applications and Technology (CLEO:A&T) 2021

Visible-wavelength optomechanical crystal for coupling phonons to a silicon vacancy center in diamond

Michael Haas, Kazuhiro Kuruma, Graham Joe, Cleaven Chia, Daniel Assumpcao, Bartholomeus Machielse, Neil Sinclair, and Marko Lončar
FW4D.2 CLEO: QELS_Fundamental Science (CLEO:FS) 2022

Presentation Video

Presentation video access is available to:

  1. Optica Publishing Group subscribers
  2. Technical meeting attendees
  3. Optica members who wish to use one of their free downloads. Please download the article first. After downloading, please refresh this page.

Contact your librarian or system administrator
or
Log in to access Optica Member Subscription or free downloads


More Like This
Diamond Phononic Crystals with Silicon-Vacancy Centers at Cryogenic Temperatures

Graham Joe, Cleaven Chia, Michelle Chalupnik, Benjamin Pingault, Srujan Meesala, Eliza Cornell, Daniel Assumpcao, Bartholomeus Machielse, and Marko Lončar
FTh4M.1 CLEO: QELS_Fundamental Science (CLEO:FS) 2021

Engineering spin-phonon coupling rates for the silicon vacancy center in diamond phononic crystal cavities

Cleaven Chia, Michelle Chalupnik, and Marko Lončar
JW4L.1 CLEO: Applications and Technology (CLEO:A&T) 2021

Visible-wavelength optomechanical crystal for coupling phonons to a silicon vacancy center in diamond

Michael Haas, Kazuhiro Kuruma, Graham Joe, Cleaven Chia, Daniel Assumpcao, Bartholomeus Machielse, Neil Sinclair, and Marko Lončar
FW4D.2 CLEO: QELS_Fundamental Science (CLEO:FS) 2022

Protecting The Spin Coherence of Silicon Vacancy Color Centers from Thermal Noise Using Diamond MEMS

Young-Ik Sohn, Srujan Meesala, Benjamin Pingault, Haig A. Atikian, Jeffrey Holzgrafe, Mustafa Gündoğan, Camille Stavrakas, Alp Sipahigil, Michael J. Burek, Mian Zhang, Jose L. Pacheco, John Abraham, Edward Bielejec, Mikhail D. Lukin, Mete Atatüre, and Marko Lončar
FTu1E.6 CLEO: QELS_Fundamental Science (CLEO:FS) 2017

Electron-phonon coupling between silicon vacancy centers and optomechanical crystals in diamond

Cleaven Chia, Srujan Meesala, Graham Joe, Michelle Chalupnik, Bartholomeus Machielse, Stefan Bogdanovic, and Marko Loncar
131 Diamond Photonics - Physics, Technologies and Applications (DP) 2019

Select as filters


Select Topics Cancel
© Copyright 2024 | Optica Publishing Group. All rights reserved, including rights for text and data mining and training of artificial technologies or similar technologies.