Strong nonlinear terahertz response induced by Dirac surface states in Bi2Se3 topological insulator

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作者
Flavio Giorgianni
Enrica Chiadroni
Andrea Rovere
Mariangela Cestelli-Guidi
Andrea Perucchi
Marco Bellaveglia
Michele Castellano
Domenico Di Giovenale
Giampiero Di Pirro
Massimo Ferrario
Riccardo Pompili
Cristina Vaccarezza
Fabio Villa
Alessandro Cianchi
Andrea Mostacci
Massimo Petrarca
Matthew Brahlek
Nikesh Koirala
Seongshik Oh
Stefano Lupi
机构
[1] Università di Roma ‘La Sapienza’,INFN and Dipartimento di Fisica
[2] Laboratori Nazionali di Frascati—INFN,INFN and Dipartimento di Fisica
[3] INSTM Udr Trieste-ST and Elettra—Sincrotrone Trieste S.C.p.A,INFN and Dipartimento S.B.A.I.
[4] Area Science Park,Department of Physics and Astronomy Rutgers
[5] Università di Roma ‘Tor Vergata’,undefined
[6] viale della Ricerca Scientifica 1,undefined
[7] Università di Roma ‘La Sapienza’,undefined
[8] The State University of New Jersey,undefined
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摘要
Electrons with a linear energy/momentum dispersion are called massless Dirac electrons and represent the low-energy excitations in exotic materials such as graphene and topological insulators. Dirac electrons are characterized by notable properties such as a high mobility, a tunable density and, in topological insulators, a protection against backscattering through the spin–momentum locking mechanism. All those properties make graphene and topological insulators appealing for plasmonics applications. However, Dirac electrons are expected to present also a strong nonlinear optical behaviour. This should mirror in phenomena such as electromagnetic-induced transparency and harmonic generation. Here we demonstrate that in Bi2Se3 topological insulator, an electromagnetic-induced transparency is achieved under the application of a strong terahertz electric field. This effect, concomitantly determined by harmonic generation and charge-mobility reduction, is exclusively related to the presence of Dirac electron at the surface of Bi2Se3, and opens the road towards tunable terahertz nonlinear optical devices based on topological insulator materials.
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