Prolonged Orbital Relaxation by Locally Modified Phonon Density of States for the SiV^{-} Center in Nanodiamonds.


Journal

Physical review letters
ISSN: 1079-7114
Titre abrégé: Phys Rev Lett
Pays: United States
ID NLM: 0401141

Informations de publication

Date de publication:
15 Apr 2022
Historique:
received: 03 08 2021
revised: 16 12 2021
accepted: 01 02 2022
entrez: 2 5 2022
pubmed: 3 5 2022
medline: 3 5 2022
Statut: ppublish

Résumé

Coherent quantum systems are a key resource for emerging quantum technology. Solid-state spin systems are of particular importance for compact and scalable devices. However, interaction with the solid-state host degrades the coherence properties. The negatively charged silicon vacancy center in diamond is such an example. While spectral properties are outstanding, with optical coherence protected by the defects symmetry, the spin coherence is susceptible to rapid orbital relaxation limiting the spin dephasing time. A prolongation of the orbital relaxation time is therefore of utmost urgency and has been tackled by operating at very low temperatures or by introducing large strain. However, both methods have significant drawbacks: the former requires use of dilution refrigerators and the latter affects intrinsic symmetries. Here, a novel method is presented to prolong the orbital relaxation with a locally modified phonon density of states in the relevant frequency range, by restricting the diamond host to below 100 nm. Subsequently measured coherent population trapping shows an extended spin dephasing time compared to the phonon-limited time in a pure bulk diamond. The method works at liquid helium temperatures of few Kelvin and in the low-strain regime.

Identifiants

pubmed: 35499869
doi: 10.1103/PhysRevLett.128.153602
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

153602

Auteurs

M Klotz (M)

Institute for Quantum Optics, Ulm University, 89081 Ulm, Germany.

K G Fehler (KG)

Institute for Quantum Optics, Ulm University, 89081 Ulm, Germany.

R Waltrich (R)

Institute for Quantum Optics, Ulm University, 89081 Ulm, Germany.

E S Steiger (ES)

Institute for Quantum Optics, Ulm University, 89081 Ulm, Germany.

S Häußler (S)

Institute for Quantum Optics, Ulm University, 89081 Ulm, Germany.

P Reddy (P)

Laser Physics Centre, Research School of Physics, Australian National University, Australian Capital Territory 2601, Australia.

L F Kulikova (LF)

L.F. Vereshchagin Institute for High Pressure Physics, Russian Academy of Sciences, Troitsk, Moscow 142190, Russia.

V A Davydov (VA)

L.F. Vereshchagin Institute for High Pressure Physics, Russian Academy of Sciences, Troitsk, Moscow 142190, Russia.

V N Agafonov (VN)

GREMAN, UMR 7347 CNRS, INSA-CVL, Tours University, 37200 Tours, France.

M W Doherty (MW)

Laser Physics Centre, Research School of Physics, Australian National University, Australian Capital Territory 2601, Australia.

A Kubanek (A)

Institute for Quantum Optics, Ulm University, 89081 Ulm, Germany.

Classifications MeSH