Surface modes in plasmonic stubbed structures

•The existence and behavior of Tamm states in plasmonic structure.•The states are induced by a surface defect at the termination of the structure.•The analytical calculations are obtained by the Green’s function method.•The numerical results are obtained by Comsol Multiphysics Software. We present a...

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Bibliographic Details
Published inMaterials today : proceedings Vol. 45; pp. 7752 - 7755
Main Authors Rezzouk, Yamina, Amrani, Madiha, Khattou, Soufyane, El Boudouti, El Houssaine, Djafari-Rouhani, Bahram
Format Journal Article
LanguageEnglish
Published Elsevier Ltd 2021
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Summary:•The existence and behavior of Tamm states in plasmonic structure.•The states are induced by a surface defect at the termination of the structure.•The analytical calculations are obtained by the Green’s function method.•The numerical results are obtained by Comsol Multiphysics Software. We present an analytical and numerical study about the existence of surface localized modes, known as Tamm states, in a one-dimensional (1D) comb-like plasmonic band gap structure. Surface plasmon polaritons (SPPs) waveguides with coupled resonators have been widely studied in recent years, because of their potential applications in highly integrated optical circuits. The system studied here is composed of an infinite 1D waveguide, along which stubs of length d1 are grafted periodically with spacing period d2. The analytical study has been performed by means of the Green’s function method which allows the calculation of the dispersion relations of the bulk, surface states of the plasmonic structure and the transmission coefficient. The band structure, as well as the transmission spectrum exhibit passbands separated by stopbands. The surface modes inside the gaps of the semi-infinite structure can be introduced by a defect at its surface. The analytical results are confirmed by numerical simulation using finite element method via Comsol Multiphysics software. These structures can be used to realize highly sensitive plasmonic sensors.
ISSN:2214-7853
2214-7853
DOI:10.1016/j.matpr.2021.03.438