Autore M, Di Pietro P, Di Gaspare A, D'Apuzzo F, Giorgianni F, Brahlek Matthew, Koirala Nikesh, Oh Seangshik, Lupi S
INFN and Dipartimento di Fisica, Università di Roma 'La Sapienza', Piazzale A. Moro 2, I-00185 Roma, Italy. CIC nanoGUNE Tolosa Hiribidea, 76 E-20018 Donostia San Sebastian, Spain.
J Phys Condens Matter. 2017 May 10;29(18):183002. doi: 10.1088/1361-648X/aa63ac. Epub 2017 Mar 31.
After the discovery of Dirac electrons in condensed matter physics, more specifically in graphene and its derivatives, their potentialities in the fields of plasmonics and photonics have been readily recognized, leading to a plethora of applications in active and tunable optical devices. Massless Dirac carriers have been further found in three-dimensional topological insulators. These exotic quantum systems have an insulating gap in the bulk and intrinsic Dirac metallic states at any surface, sustaining not only single-particle excitations but also plasmonic collective modes. In this paper we will review the plasmon excitations in different microstructures patterned on BiSe topological insulator thin films as measured by terahertz spectroscopy. We discuss the dependence of the plasmon absorption versus the microstructure shape, wavevector, and magnetic field. Finally we will discuss the topological protection of both the Dirac single-particle and plasmon excitations.
在凝聚态物理中发现狄拉克电子之后,更确切地说是在石墨烯及其衍生物中发现之后,它们在等离子体学和光子学领域的潜力很快就得到了认可,从而在有源和可调谐光学器件中产生了大量应用。在三维拓扑绝缘体中进一步发现了无质量狄拉克载流子。这些奇异的量子系统在体相中具有绝缘能隙,在任何表面都具有本征狄拉克金属态,不仅支持单粒子激发,还支持等离子体集体模式。在本文中,我们将回顾通过太赫兹光谱测量的在BiSe拓扑绝缘体薄膜上图案化的不同微结构中的等离子体激发。我们讨论了等离子体吸收与微结构形状、波矢和磁场的依赖性。最后,我们将讨论狄拉克单粒子激发和等离子体激发的拓扑保护。