The efficient interaction of light with quantum emitters is crucial to most applications in nano and quantum photonics, such as sensing or quantum information processing. Effective excitation and photon extraction are particularly important for the weak signals emitted by a single atom or molecule. Recent works have introduced novel collection strategies, which demonstrate that large efficiencies can be achieved by either planar dielectric antennas combined with high numerical aperture objectives or optical nanostructures that beam emission into a narrow angular distribution. However, the first approach requires the use of elaborate collection optics, while the latter is based on accurate positioning of the quantum emitter near complex nanoscale architectures; hence, sophisticated fabrication and experimental capabilities are needed. Here we present a theoretical and experimental demonstration of a planar optical antenna that beams light emitted by a single molecule, which results in increased collection efficiency at small angles without stringent requirements on the emitter position. The proposed device exhibits broadband performance and is spectrally scalable, and it is simple to fabricate and therefore applies to a wide range of quantum emitters. Our design finds immediate application in spectroscopy, quantum optics and sensing.

Beaming light from a quantum emitter with a planar optical antenna / Checcucci, Simona; Lombardi, Pietro; Rizvi, Sahrish; Sgrignuoli, Fabrizio; Gruhler, Nico; Dieleman, Frederik Bc; S Cataliotti, Francesco; Pernice, Wolfram Hp; Agio, Mario; Toninelli, Costanza. - In: LIGHT, SCIENCE & APPLICATIONS. - ISSN 2047-7538. - STAMPA. - 6:(2017), pp. e16245-e16245. [10.1038/lsa.2016.245]

Beaming light from a quantum emitter with a planar optical antenna

CHECCUCCI, SIMONA;LOMBARDI, PIETRO ERNESTO;RIZVI, SAHRISH;SGRIGNUOLI, FABRIZIO;CATALIOTTI, FRANCESCO SAVERIO;TONINELLI, COSTANZA
2017

Abstract

The efficient interaction of light with quantum emitters is crucial to most applications in nano and quantum photonics, such as sensing or quantum information processing. Effective excitation and photon extraction are particularly important for the weak signals emitted by a single atom or molecule. Recent works have introduced novel collection strategies, which demonstrate that large efficiencies can be achieved by either planar dielectric antennas combined with high numerical aperture objectives or optical nanostructures that beam emission into a narrow angular distribution. However, the first approach requires the use of elaborate collection optics, while the latter is based on accurate positioning of the quantum emitter near complex nanoscale architectures; hence, sophisticated fabrication and experimental capabilities are needed. Here we present a theoretical and experimental demonstration of a planar optical antenna that beams light emitted by a single molecule, which results in increased collection efficiency at small angles without stringent requirements on the emitter position. The proposed device exhibits broadband performance and is spectrally scalable, and it is simple to fabricate and therefore applies to a wide range of quantum emitters. Our design finds immediate application in spectroscopy, quantum optics and sensing.
2017
6
e16245
e16245
Checcucci, Simona; Lombardi, Pietro; Rizvi, Sahrish; Sgrignuoli, Fabrizio; Gruhler, Nico; Dieleman, Frederik Bc; S Cataliotti, Francesco; Pernice, Wolfram Hp; Agio, Mario; Toninelli, Costanza
File in questo prodotto:
File Dimensione Formato  
72LSA.pdf

Accesso chiuso

Tipologia: Pdf editoriale (Version of record)
Licenza: Tutti i diritti riservati
Dimensione 997.2 kB
Formato Adobe PDF
997.2 kB Adobe PDF   Richiedi una copia

I documenti in FLORE sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificatore per citare o creare un link a questa risorsa: https://hdl.handle.net/2158/1079586
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 44
  • ???jsp.display-item.citation.isi??? 43
social impact