| Literature DB >> 29679172 |
Pingping Qiu1, Weibin Qiu2, Junbo Ren1, Zhili Lin1, Zeyu Wang1, Jia-Xian Wang1, Qiang Kan3,4, Jiao-Qing Pan3,4.
Abstract
Originating from the investigation of condensed matter states, the concept of quantum Hall effect and quantum spin Hall effect (QSHE) has recently been expanded to other field of physics and engineering, e.g., photonics and phononics, giving rise to strikingly unconventional edge modes immune to scattering. Here, we present the plasmonic analog of QSHE in graphene plasmonic crystal (GPC) in mid-infrared frequencies. The band inversion occurs when deforming the honeycomb lattice GPCs, which further leads to the topological band gaps and pseudospin features of the edge states. By overlapping the band gaps with different topologies, we numerically simulated the pseudospin-dependent one-way propagation of edge states. The designed GPC may find potential applications in the fields of topological plasmonics and trigger the exploration of the technique of the pseudospin multiplexing in high-density nanophotonic integrated circuits.Entities:
Keywords: Graphene; Plasmonic crystal; Surface plasmon polaritons; Topological states
Year: 2018 PMID: 29679172 PMCID: PMC5910330 DOI: 10.1186/s11671-018-2538-x
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1a Schematics of the 2D GPCs. b The Brillouin zones. c Band structure of the lattice based on the rhombic primitive unit cell indicated with green dashed lines, the insets plot the eigen electric field distributions of the Dirac point. d Band structure of the lattice based on the hexagonal unit cell, the insets plot the eigen electric field distributions of the double Dirac point. The other parameters are set as μc1 = 0.3 eV, μc2 = 0.6 eV, τ = 1 ps, the lattice constant a = 40 nm
Fig. 2Band structures of the GPCs with a a/R = 3.2, b a/R = 3, and c a/R = 2.9. d, e The Ez field distributions of dipole modes and quadrupole modes of the p± and d± states in a and c respectively. The white arrows present the in-plane magnetic field associated with Ez field
Fig. 3a Projected band structure for a supercell composed of 16 nontrivial unit cells cladded by 12 trivial unit cells on both sides. b Electric field distributions around the interface between the trivial and nontrivial plasmonic crystals at points A and B, i.e., at k = − 0.05π/a and 0.05π/a respectively
Fig. 4a Leftward and b rightward one-way edge states excited by in-plane magnetic field with a π/2 phase difference:. c Topological edge states traveling along sharp bends. d The electric field intensity distribution of the topological one-way transmission without considering the intrinsic loss of graphene material