Showing posts with label Shuming Wang. Show all posts
Showing posts with label Shuming Wang. Show all posts

Thursday, August 15, 2019

Abstract-Broadband achromatic metalens in terahertz regime


Qingqing ChengMeilin MaDong YuZhixiong ShenJingya XieJuncheng WangNianxi XuHanming GuoWei HuShuming WangTao LiSonglin Zhuang

Unlabelled figure

https://www.sciencedirect.com/science/article/pii/S2095927319304621

Achromatic focusing is essential for broadband operation, which has recently been realized from visible to infrared wavelengths using a metasurface. Similarly, multi-terahertz functional devices can be encoded in a desired metasurface phase profile. However, metalenses suffer from larger chromatic aberrations because of the intrinsic dispersion of each unit element. Here, we propose an achromatic metalens with C-shaped unit elements working from 0.3 to 0.8 THz with a bandwidth of approximately 91% over the centre frequency. The designed metalens possesses a high working efficiency of more than 68% at the peak and a relatively high numerical aperture of 0.385. We further demonstrate the robustness of our C-shaped metalens, considering lateral shape deformations and deviations in the etching depth. Our metalens design opens an avenue for future applications of terahertz meta-devices in spectroscopy, time-of-flight tomography and hyperspectral imaging systems.

Monday, November 6, 2017

Abstract-Tunable unidirectional surface plasmon polariton launcher utilizing a graphene-based single asymmetric nanoantenna




Lei Huang, Shan Wu, Yulin Wang, Xiangjun Ma, Hongmei Deng, Shuming Wang, Ye Lu, Chuanqi Li, and Tao Li
We design and numerically investigate a graphene-based asymmetric nanoantenna microstructure that can be used to realize electrically controllable, unidirectionally propagating broadband surface plasmon polaritons. The device geometry facilitates the simultaneous excitation of two localized surface plasmons resonances in the whole structure, and consequently, the asymmetric nanoantenna can be considered as being composed of two oscillating magnetic dipoles, wherein the interference of the radiated electromagnetic waves leads to a unidirectional propagation effect. Our results indicate that our proposed active device is promising for realizing compactable, tunable, terahertz plasmonic light sources.
© 2017 Optical Society of America