Electromagnetically induced transparency in terahertz asymmetric split-ring resonators driven by radiative and non-radiative losses
Abstract
The classical analog of electromagnetically induced transparency (EIT), manifested using artificially structured materials known as metamaterials, has been a topic of significant interest for enabling slow and fast light propagation within a sharp transparency window. In metamaterials, the constituent resonators can be engineered to emulate a three-level quantum system, whose optical response is strongly influenced by the intrinsic losses of the system. These losses, both radiative and non-radiative, play a critical role in determining the linewidth and quality factor (Q-factor) of the EIT resonance. In this work, we investigate how material conductivity and structural asymmetry modulate the transparency window and loss dynamics over the 0.8–1.4 terahertz (THz) frequency range by employing a coupled oscillator model to decouple and quantify the individual contributions of radiative and non-radiative losses in a metamaterial configuration: the terahertz asymmetric split-ring resonator (TASR). By comparing TASRs constructed from aluminum and an ideal perfect electric conductor (PEC), we decouple and quantify the individual contributions of radiative and non-radiative losses in a well-known metamaterial configuration. The extracted Q-factors range from 10 to over 1000, with the PEC demonstrating ultrasharp EIT features at small asymmetry values due to its negligible ohmic loss. Our results provide important insights into optimizing metamaterial designs for high-Q performance in THz applications such as sensing, filtering, and slow-light devices.
Article Details
Journal Info
Journal of Applied Physics
American Institute of Physics
Authors (5)
Ratilal G. Meher
Ultrafast Terahertz Photonics Laboratory, Department of Physics, Indian Institute of Technology Hyderabad 1 , Kandi, Sangareddy 502285,
Shivansh Sharma
Ultrafast Terahertz Photonics Laboratory, Department of Physics, Indian Institute of Technology Hyderabad 1 , Kandi, Sangareddy 502285,
Mikhila M
Ultrafast Terahertz Photonics Laboratory, Department of Physics, Indian Institute of Technology Hyderabad 1 , Kandi, Sangareddy 502285,
Govind Dayal
Department of Physics and Astrophysics, University of Delhi 2 , New Delhi 110007,
Yogesh Kumar Srivastava
Ultrafast Terahertz Photonics Laboratory (UTPL), Department of Physics, Indian Institute of Technology Hyderabad 1 , Kandi, Sangareddy, Telangana 502284,