Mostrar registro simples

dc.contributor.authorGrün, Daniel Schneiderpt_BR
dc.contributor.authorWilsmann, Karin Wittmannpt_BR
dc.contributor.authorYmai, Leandro Hayatopt_BR
dc.contributor.authorLinks, Jonpt_BR
dc.contributor.authorFoerster, Angelapt_BR
dc.date.accessioned2022-04-13T04:51:13Zpt_BR
dc.date.issued2022pt_BR
dc.identifier.issn2399-3650pt_BR
dc.identifier.urihttp://hdl.handle.net/10183/237121pt_BR
dc.description.abstractThe ability to reliably prepare non-classical states will play a major role in the realization of quantum technology. NOON states, belonging to the class of Schrödinger cat states, have emerged as a leading candidate for several applications. Here we show how to generate NOON states in a model of dipolar bosons confined to a closed circuit of four sites. This is achieved by designing protocols to transform initial Fock states to NOON states through use of time evolution, application of an external field, and local projective measurements. The evolution time is independent of total particle number, offering an encouraging prospect for scalability. By variation of the external field strength, we demonstrate how the system can be controlled to encode a phase into a NOON state. We also discuss the physical feasibility, via ultracold dipolar atoms in an optical superlattice setup. Our proposal showcases the benefits of quantum integrable systems in the design of protocols.en
dc.format.mimetypeapplication/pdfpt_BR
dc.language.isoporpt_BR
dc.relation.ispartofCommunications Physics. London. Vol. 5, (2022), 36, 7 p.pt_BR
dc.rightsOpen Accessen
dc.subjectBosonspt_BR
dc.subjectSistemas quanticospt_BR
dc.titleProtocol designs for NOON statespt_BR
dc.typeArtigo de periódicopt_BR
dc.identifier.nrb001138205pt_BR
dc.type.originEstrangeiropt_BR


Thumbnail
   

Este item está licenciado na Creative Commons License

Mostrar registro simples