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Unidirectional Bragg Gratings Using Parity-Time Symmetry Breaking in Plasmonic Systems

Authors
Hahn, CholoongKeshmarzi, Elham KaramiSong, Seok HoOh, Cha HwanTait, R. NiallBerini, Pierre
Issue Date
Sep-2016
Publisher
IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
Keywords
Bragg gratings; energy velocity; exceptional point; group velocity; parity-time symmetry; plasmonics
Citation
IEEE JOURNAL OF SELECTED TOPICS IN QUANTUM ELECTRONICS, v.22, no.5, pp.1 - 12
Indexed
SCIE
SCOPUS
Journal Title
IEEE JOURNAL OF SELECTED TOPICS IN QUANTUM ELECTRONICS
Volume
22
Number
5
Start Page
1
End Page
12
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/153999
DOI
10.1109/JSTQE.2016.2519825
ISSN
1077-260X
Abstract
Optical systems following concepts of parity-time (PT) symmetry have attracted significant attention because of their extraordinary behavior such as unidirectional reflectance or power oscillation. PT symmetric optical systems are realized by judiciously manipulating the complex refractive index to produce even-and odd-symmetric distributions for the real and imaginary indices, respectively. We propose two PT symmetric Bragg gratings based on step-in-width metal stripes and dielectric-loaded metal stripes operating with long-range surface plasmon polaritons. The gratings are designed to operate near 880 nm because optical gain can be conveniently provided by IR140-doped PMMA. Asymmetric reflectance is predicted in the proposed gratings based on modal and transfer matrix method computations. Moreover, we analyzed pulse reshaping and energy transport in generic gratings, and in the proposed plasmonic gratings, in terms of group and energy velocities. It is found that the group and energy velocities are dispersionless at the PT symmetry breaking point. Also, the group velocity dispersion can be inverted by changing the PT symmetric state from broken to unbroken or vice versa. Our designs are practical because a large left-right asymmetric reflectance contrast is produced for a wide range of physical dimensions. The proposed gratings are suitable as on-chip devices for optical processing providing new functionality such as switching and controlling the time delay of a data pulse without distortion.
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