Showing posts with label Siqing Zhang. Show all posts
Showing posts with label Siqing Zhang. Show all posts

Tuesday, June 26, 2018

Abstract- Rainbow Trapping in Highly Doped Silicon Graded Grating Strip at the Terahertz Range


Yan Liu,  Ruoying Kanyang, Genquan Han, Yao Shao, Cizhe Fang ;  Yan Huang,  Siqing Zhang,   Jincheng Zhang

https://ieeexplore.ieee.org/document/8318699/

In this paper, we propose surface plasma polaritons (SPPs) propagating along the structure of grating grooves based on highly doped silicon, which exhibits better performance of exciting SPPs than metal at low frequency (e.g., microwaves, mid infrared, and terahertz). The dispersive properties of the gradient-corrugated grating waveguides are characterized using the computer simulation technology microwave studio. Moreover, the propagation characteristics of the highly doped silicon grating structure are analyzed in detail by the dispersion curves, two-dimensional electric field magnitude distributions, the propagation loss, and the SPP lifetime. It is demonstrated that the gradient-corrugated grating waveguides based on heavily doped silicon could excite SPPs and realize rainbow trapping. The lifetime of the plasmonic mode can reach a value of 1200 ps, which may be long enough for some meaningful nanophotonic applications. The highly doped silicon is an ideal candidate for making practical use of the slow-light system in optical communication and various nanophotonic circuits, which permits further application for compact plasmonic devices.

Saturday, November 18, 2017

Abstract-Engineering rainbow trapping and releasing in ultrathin THz plasmonic graded metallic grating strip with thermo-optic material



Yan Liu, Yibo Wang, Genquan Han, Yao Shao, Cizhe Fang, Siqing Zhang, Yan Huang, Jincheng Zhang, and Yue Hao

https://www.osapublishing.org/oe/abstract.cfm?uri=oe-25-2-1278&origin=search

In this paper, we propose an ultrathin THz plasmonic metallic strip based on graded grating structure with thermo-optic material, which exhibits a strong engineering of trapping and releasing electromagnetic waves in terahertz regimes. The dispersion properties of the ultrathin spoof slow-wave plasmonic graded grating waveguide are characterized using the finite element method, and the propagation characteristics of the grating structures are thoroughly analyzed by the dispersion curves, electric field magnitude distribution, and electric field vertical distribution. The gradient grating waveguide is demonstrated to be an ideal slow-wave system for trapping and releasing surface plasmon polaritons (SPPs) waves through tuning the refractive index of the thermo-optic material. The reflected location for the SPPs waves on the graded corrugated metal strip at 1.1 THz at different temperatures are compared. It is proved that such ultrathin gradient grating waveguide provides an excellent performance for trapping and releasing surface waves at THz, which permits applications for future optical communications.
© 2017 Optical Society of America