Electromagnetic propagation characteristics of one-dimensional photonic crystals with metal layers in quasi-parity-time (PT)-symmetric system
Abstract
In this study, the propagation characteristics of electromagnetic waves in a parity-time (PT)-symmetrical 1D photonic crystal comprising dispersed silver layers are investigated. Based on the transmission matrix theory, the total reflection and transmission coefficients of the structure are obtained. It was found that, due to the PT-symmetrical structure, the reflections of the left and right incident waves are nonreciprocal. Numerical simulations indicated that the width of the band gap decreases with the increase in the gain and loss factor ρ in the PT medium, and the band gap ultimately disappears when ρ reaches a critical value, i. e.,
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Author contribution: All the authors have accepted responsibility for the entire content of this submitted manuscript and approved submission.
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Research funding: None declared.
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Conflict of interest statement: The authors declare no conflicts of interest regarding this article.
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Artikel in diesem Heft
- Frontmatter
- General
- Remote magnetically controlled drug release from electrospun composite nanofibers: design of a smart platform for therapy of psoriasis
- Dynamical Systems & Nonlinear Phenomena
- A modified simple chaotic hyperjerk circuit: coexisting bubbles of bifurcation and mixed-mode bursting oscillations
- Dynamics of a discrete-time system with Z-type control
- Dynamic response of axially loaded end-bearing rectangular closed diaphragm walls
- Hydrodynamics
- Admissibility conditions for Riemann data in shallow water theory
- Numerical study on the rotating electro-osmotic flow of third grade fluid with slip boundary condition
- Solid State Physics & Materials Science
- Ultrasonic study of Si-oil based magneto-rheological fluid
- Electromagnetic propagation characteristics of one-dimensional photonic crystals with metal layers in quasi-parity-time (PT)-symmetric system
- Thermodynamics & Statistical Physics
- Combined influence of axial electron temperature and exponential plasma density ramp on the self-focusing of a chirped laser in plasma
Artikel in diesem Heft
- Frontmatter
- General
- Remote magnetically controlled drug release from electrospun composite nanofibers: design of a smart platform for therapy of psoriasis
- Dynamical Systems & Nonlinear Phenomena
- A modified simple chaotic hyperjerk circuit: coexisting bubbles of bifurcation and mixed-mode bursting oscillations
- Dynamics of a discrete-time system with Z-type control
- Dynamic response of axially loaded end-bearing rectangular closed diaphragm walls
- Hydrodynamics
- Admissibility conditions for Riemann data in shallow water theory
- Numerical study on the rotating electro-osmotic flow of third grade fluid with slip boundary condition
- Solid State Physics & Materials Science
- Ultrasonic study of Si-oil based magneto-rheological fluid
- Electromagnetic propagation characteristics of one-dimensional photonic crystals with metal layers in quasi-parity-time (PT)-symmetric system
- Thermodynamics & Statistical Physics
- Combined influence of axial electron temperature and exponential plasma density ramp on the self-focusing of a chirped laser in plasma