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

Saturday, September 8, 2018

Abstract-High-efficiency terahertz polarization devices based on the dielectric metasurface



Jian Zhou, JingJing Wang, Kai Guo, Fei Shen,  Qingfeng Zhou,  Zhiping Yin,  Zhongyi Guo,

Fig.2. Simulated electromagnetic responses of the Si Micro-brick unit cell

https://www.sciencedirect.com/science/article/pii/S0749603617327180

Metasurfaces are composed of the subwavelength structures, which can be used to manipulate the amplitude, phase, and polarization of incident electromagnetic waves efficiently. Here, we propose a novel type of dielectric metasurface based on crystal Si for realizing to manipulate the terahertz wave, in which by varying the geometric sizes of the Si micro-bricks, the transmitting phase of the terahertz wave can almost span over the entire 2π range for both of the x-polarization and y-polarization simultaneously, while keeping the similarly high-transmission amplitudes (over 90%). At the frequency of 1.0 THz, we have successfully designed a series of controllable THz devices, such as the polarization-dependent beam splitter, polarization-independent beam deflector and the focusing lenses based on the designed metasurfaces. Our designs are easy to fabricate and can be promising in developing high-efficiency THz functional devices.

Friday, July 27, 2018

Abstract-High-efficiency terahertz dual-function devices based on the dielectric metasurface


JingJing Wang, Jian Zhou, Kai Guo, Fei Shen, Qingfeng Zhou, Zhipingyin, Zhongyi Guo,


Fig. 3. (a) Schematic of the designed Si Micro-brick: P=150μm, h=195μm, Lx=60μm and…

https://www.sciencedirect.com/science/article/pii/S0749603618308784

The multifunctional optical device has attracted great interests due to the wide range of modern optical applications. However, conventional optical devices are single function and bulky structure, thereby hindering the practicality and miniaturization of the optical systems. Here, we present the basic theory, simulated demonstration, and in-depth analysis of a novel type of dielectric metasurface based on crystal Si to simultaneously convert and focus an incident linear polarization into other linear polarization or circular polarization with high efficiency and high numerical aperture (NA). Additionally, we have also achieved a quart wave-plate (QWP) based deflector that enables both arbitrary anomalous beam deflection and the polarization conversion. Simulation results show that the invertible QWP based deflector, including the linear-to-circular (LTC) and circular-to-linear (CTL) conversions, demonstrate around 80% deflection efficiency at 1.0 THz. With similar concept, a half wave-plate (HWP) combined with beam steering has also been achieved. Taking into account the considerable manipulation efficiency and cost-efficient sample fabrication technique, our designs show the great potentials of metasurfaces as a versatile platform for designing practical functional devices in the THz range.

Saturday, February 10, 2018

Abstract-High-efficiency terahertz polarization devices based on the dielectric metasurface


Jian Zhou,  JingJing Wang, Kai Guo, Fei Shen, Qingfeng Zhou, Zhiping Yin, Zhongyi Guo,

https://www.sciencedirect.com/science/article/pii/S0749603617327180

Metasurfaces are composed of the subwavelength structures, which can be used to manipulate the amplitude, phase, and polarization of incident electromagnetic waves efficiently. Here, we propose a novel type of dielectric metasurface based on crystal Si for realizing to manipulate the terahertz wave, in which by varying the geometric sizes of the Si micro-bricks, the transmitting phase of the terahertz wave can almost span over the entire 2π range for both of the x-polarization and y-polarization simultaneously, while keeping the similarly high-transmission amplitudes (over 90%). At the frequency of 1.0 THz, we have successfully designed a series of controllable THz devices, such as the polarization-dependent beam splitter, polarization-independent beam deflector and the focusing lenses based on the designed metasurfaces. Our designs are easy to fabricate and can be promising in developing high-efficiency THz functional devices.