Magnetic plasmon induced transparency in three-dimensional metamolecules

Author:

Wu Pin Chieh1,Chen Wei Ting1,Yang Kuang-Yu1,Hsiao Chih Ting2,Sun Greg3,Liu Ai Qun4,Zheludev Nikolay I.5,Tsai Din Ping

Affiliation:

1. 1Graduate Institute of Applied Physics, National Taiwan University, Taipei 10617, Taiwan

2. 2Department of Physics, National Taiwan University, Taipei 10617, Taiwan

3. 3Department of Physics, University of Massachusetts Boston, MA 02125, USA

4. 4School of Electrical and Electronic Engineering, Nanyang Technological University, 639798, Singapore

5. 5Optoelectronics Research Centre and Centre for Photonic Metamaterials, University of Southampton, Southampton SO17 1BJ, UK

Abstract

AbstractIn a laser-driven atomic quantum system, a continuous state couples to a discrete state resulting in quantum interference that provides a transmission peak within a broad absorption profile the so-called electromagnetically induced transparency (EIT). In the field of plasmonic metamaterials, the sub-wavelength metallic structures play a role similar to atoms in nature. The interference of their near-field coupling at plasmonic resonance leads to a plasmon induced transparency (PIT) that is analogous to the EIT of atomic systems. A sensitive control of the PIT is crucial to a range of potential applications such as slowing light and biosensor. So far, the PIT phenomena often arise from the electric resonance, such as an electric dipole state coupled to an electric quadrupole state. Here we report the first three-dimensional photonic metamaterial consisting of an array of erected U-shape plasmonic gold nanostructures that exhibits PIT phenomenon with magnetic dipolar interaction between magnetic metamolecules. We further demonstrate using a numerical simulation that the coupling between the different excited pathways at an intermediate resonant wavelength allows for a π phase shift resulting in a destructive interference. A classical RLC circuit was also proposed to explain the coupling effects between the bright and dark modes of EIT-like electromagnetic spectra. This work paves a promising approach to achieve magnetic plasmon devices.

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology

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