Giorgianni Flavio, Chiadroni Enrica, Rovere Andrea, Cestelli-Guidi Mariangela, Perucchi Andrea, Bellaveglia Marco, Castellano Michele, Di Giovenale Domenico, Di Pirro Giampiero, Ferrario Massimo, Pompili Riccardo, Vaccarezza Cristina, Villa Fabio, Cianchi Alessandro, Mostacci Andrea, Petrarca Massimo, Brahlek Matthew, Koirala Nikesh, Oh Seongshik, Lupi Stefano
INFN and Dipartimento di Fisica, Università di Roma 'La Sapienza', Piazzale A. Moro 2, I-00185 Roma, Italy.
Laboratori Nazionali di Frascati-INFN, Via E. Fermi, 40, I-00044 Frascati, Italy.
Nat Commun. 2016 Apr 26;7:11421. doi: 10.1038/ncomms11421.
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.
具有线性能量/动量色散的电子被称为无质量狄拉克电子,它们代表了诸如石墨烯和拓扑绝缘体等奇异材料中的低能激发态。狄拉克电子具有显著的特性,如高迁移率、可调节的密度,以及在拓扑绝缘体中通过自旋-动量锁定机制防止背散射。所有这些特性使得石墨烯和拓扑绝缘体在等离子体应用中颇具吸引力。然而,狄拉克电子预计还会呈现出强烈的非线性光学行为。这应该会在诸如电磁诱导透明和谐波产生等现象中体现出来。在此,我们证明在Bi2Se3拓扑绝缘体中,在强太赫兹电场作用下可实现电磁诱导透明。这种效应由谐波产生和电荷迁移率降低共同决定,完全与Bi2Se3表面的狄拉克电子的存在有关,并为基于拓扑绝缘体材料的可调谐太赫兹非线性光学器件开辟了道路。