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Strain engineering of the silicon-vacancy center in diamond

  • Srujan Meesala
  • , Young Ik Sohn
  • , Benjamin Pingault
  • , Linbo Shao
  • , Haig A. Atikian
  • , Jeffrey Holzgrafe
  • , Mustafa Gündoǧan
  • , Camille Stavrakas
  • , Alp Sipahigil
  • , Cleaven Chia
  • , Ruffin Evans
  • , Michael J. Burek
  • , Mian Zhang
  • , Lue Wu
  • , Jose L. Pacheco
  • , John Abraham
  • , Edward Bielejec
  • , Mikhail D. Lukin
  • , Mete Atatüre
  • , Marko Lončar

Research output: Contribution to journalArticlepeer-review

272 Scopus citations

Abstract

We control the electronic structure of the silicon-vacancy (SiV) color-center in diamond by changing its static strain environment with a nano-electro-mechanical system. This allows deterministic and local tuning of SiV optical and spin transition frequencies over a wide range, an essential step towards multiqubit networks. In the process, we infer the strain Hamiltonian of the SiV revealing large strain susceptibilities of order 1 PHz/strain for the electronic orbital states. We identify regimes where the spin-orbit interaction results in a large strain susceptibility of order 100 THz/strain for spin transitions, and propose an experiment where the SiV spin is strongly coupled to a nanomechanical resonator.
Original languageEnglish
JournalPhysical Review B
Volume97
Issue number20
DOIs
StatePublished - May 29 2018
Externally publishedYes

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