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Giant enhancement of third-harmonic generation in graphene–metal heterostructures

Authors :
Massachusetts Institute of Technology. Research Laboratory of Electronics
Alonso Calafell, Irati
Rozema, Lee A
Alcaraz Iranzo, David
Trenti, Alessandro
Jenke, Philipp K
Cox, Joel D
Kumar, Avinash
Bieliaiev, Hlib
Nanot, Sébastien
Peng, Cheng
Efetov, Dmitri K
Hong, Jin-Yong
Kong, Jing
Englund, Dirk R
García de Abajo, F Javier
Koppens, Frank HL
Walther, Philip
Massachusetts Institute of Technology. Research Laboratory of Electronics
Alonso Calafell, Irati
Rozema, Lee A
Alcaraz Iranzo, David
Trenti, Alessandro
Jenke, Philipp K
Cox, Joel D
Kumar, Avinash
Bieliaiev, Hlib
Nanot, Sébastien
Peng, Cheng
Efetov, Dmitri K
Hong, Jin-Yong
Kong, Jing
Englund, Dirk R
García de Abajo, F Javier
Koppens, Frank HL
Walther, Philip
Source :
arXiv
Publication Year :
2022

Abstract

© 2020, The Author(s), under exclusive licence to Springer Nature Limited. Nonlinear nanophotonics leverages engineered nanostructures to funnel light into small volumes and intensify nonlinear optical processes with spectral and spatial control. Owing to its intrinsically large and electrically tunable nonlinear optical response, graphene is an especially promising nanomaterial for nonlinear optoelectronic applications. Here we report on exceptionally strong optical nonlinearities in graphene–insulator–metal heterostructures, which demonstrate an enhancement by three orders of magnitude in the third-harmonic signal compared with that of bare graphene. Furthermore, by increasing the graphene Fermi energy through an external gate voltage, we find that graphene plasmons mediate the optical nonlinearity and modify the third-harmonic signal. Our findings show that graphene–insulator–metal is a promising heterostructure for optically controlled and electrically tunable nano-optoelectronic components.

Details

Database :
OAIster
Journal :
arXiv
Notes :
application/pdf, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1342475850
Document Type :
Electronic Resource