Publikation: Spin-strain interaction in nitrogen-vacancy centers in diamond
Dateien
Datum
Autor:innen
Herausgeber:innen
ISSN der Zeitschrift
Electronic ISSN
ISBN
Bibliografische Daten
Verlag
Schriftenreihe
Auflagebezeichnung
DOI (zitierfähiger Link)
ArXiv-ID
Internationale Patentnummer
Angaben zur Forschungsförderung
Projekt
Open Access-Veröffentlichung
Sammlungen
Core Facility der Universität Konstanz
Titel in einer weiteren Sprache
Publikationstyp
Publikationsstatus
Erschienen in
Zusammenfassung
The interaction of solid-state electronic spins with deformations of their host crystal is an important ingredient in many experiments realizing quantum information processing schemes. Here, we theoretically characterize that interaction for a nitrogen-vacancy (NV) center in diamond. We derive the symmetry-allowed Hamiltonian describing the interaction between the ground-state spin-triplet electronic configuration and the local strain. We numerically calculate the six coupling-strength parameters of the Hamiltonian using density functional theory, and propose an experimental setup for measuring those coupling strengths. The importance of this interaction is highlighted by the fact that it enables to drive spin transitions, both magnetically allowed and forbidden, via mechanically or electrically driven spin resonance. This means that the ac magnetic field routinely used in a wide range of spin-resonance experiments with NV centers could in principle be replaced by ac strain or ac electric field, potentially offering lower power requirements, simplified device layouts, faster spin control, and local addressability of electronic spin qubits.
Zusammenfassung in einer weiteren Sprache
Fachgebiet (DDC)
Schlagwörter
Konferenz
Rezension
Zitieren
ISO 690
UDVARHELYI, Péter, Vladislav O. SHKOLNIKOV, Adam GALI, Guido BURKARD, András PÁLYI, 2018. Spin-strain interaction in nitrogen-vacancy centers in diamond. In: Physical Review B. 2018, 98(7), 075201. ISSN 2469-9950. eISSN 2469-9969. Available under: doi: 10.1103/PhysRevB.98.075201BibTex
@article{Udvarhelyi2018Spins-43211, year={2018}, doi={10.1103/PhysRevB.98.075201}, title={Spin-strain interaction in nitrogen-vacancy centers in diamond}, number={7}, volume={98}, issn={2469-9950}, journal={Physical Review B}, author={Udvarhelyi, Péter and Shkolnikov, Vladislav O. and Gali, Adam and Burkard, Guido and Pályi, András}, note={Article Number: 075201} }
RDF
<rdf:RDF xmlns:dcterms="http://purl.org/dc/terms/" xmlns:dc="http://purl.org/dc/elements/1.1/" xmlns:rdf="http://www.w3.org/1999/02/22-rdf-syntax-ns#" xmlns:bibo="http://purl.org/ontology/bibo/" xmlns:dspace="http://digital-repositories.org/ontologies/dspace/0.1.0#" xmlns:foaf="http://xmlns.com/foaf/0.1/" xmlns:void="http://rdfs.org/ns/void#" xmlns:xsd="http://www.w3.org/2001/XMLSchema#" > <rdf:Description rdf:about="https://kops.uni-konstanz.de/server/rdf/resource/123456789/43211"> <dc:creator>Shkolnikov, Vladislav O.</dc:creator> <dc:contributor>Pályi, András</dc:contributor> <dc:date rdf:datatype="http://www.w3.org/2001/XMLSchema#dateTime">2018-09-10T12:05:34Z</dc:date> <dc:creator>Pályi, András</dc:creator> <dcterms:title>Spin-strain interaction in nitrogen-vacancy centers in diamond</dcterms:title> <dc:creator>Burkard, Guido</dc:creator> <bibo:uri rdf:resource="https://kops.uni-konstanz.de/handle/123456789/43211"/> <dc:creator>Udvarhelyi, Péter</dc:creator> <dcterms:abstract xml:lang="eng">The interaction of solid-state electronic spins with deformations of their host crystal is an important ingredient in many experiments realizing quantum information processing schemes. Here, we theoretically characterize that interaction for a nitrogen-vacancy (NV) center in diamond. We derive the symmetry-allowed Hamiltonian describing the interaction between the ground-state spin-triplet electronic configuration and the local strain. We numerically calculate the six coupling-strength parameters of the Hamiltonian using density functional theory, and propose an experimental setup for measuring those coupling strengths. The importance of this interaction is highlighted by the fact that it enables to drive spin transitions, both magnetically allowed and forbidden, via mechanically or electrically driven spin resonance. This means that the ac magnetic field routinely used in a wide range of spin-resonance experiments with NV centers could in principle be replaced by ac strain or ac electric field, potentially offering lower power requirements, simplified device layouts, faster spin control, and local addressability of electronic spin qubits.</dcterms:abstract> <foaf:homepage rdf:resource="http://localhost:8080/"/> <dc:contributor>Shkolnikov, Vladislav O.</dc:contributor> <dc:contributor>Udvarhelyi, Péter</dc:contributor> <dc:contributor>Burkard, Guido</dc:contributor> <dcterms:available rdf:datatype="http://www.w3.org/2001/XMLSchema#dateTime">2018-09-10T12:05:34Z</dcterms:available> <dc:contributor>Gali, Adam</dc:contributor> <dc:language>eng</dc:language> <dcterms:isPartOf rdf:resource="https://kops.uni-konstanz.de/server/rdf/resource/123456789/41"/> <void:sparqlEndpoint rdf:resource="http://localhost/fuseki/dspace/sparql"/> <dspace:isPartOfCollection rdf:resource="https://kops.uni-konstanz.de/server/rdf/resource/123456789/41"/> <dc:creator>Gali, Adam</dc:creator> <dcterms:issued>2018</dcterms:issued> </rdf:Description> </rdf:RDF>