Showing posts with label Ka Fai Chan. Show all posts
Showing posts with label Ka Fai Chan. Show all posts

Friday, May 22, 2020

Abstract-All-optical diffractive neural networked terahertz hologram


Dashuang Liao, Ka Fai Chan, Chi Hou Chan, Qingle Zhang, and Haogang Wang



https://www.osapublishing.org/ol/abstract.cfm?uri=ol-45-10-2906

Holography has garnered an explosion of interest in tremendous applications, owing to its capability of storing amplitude and phase of light and reconstructing the full-wave information of targets. Spatial light modulators, metalenses, metasurfaces, and other devices have been explored to achieve holographic images. However, the required phase distributions for conventional holograms are generally calculated using the Gerchberg–Saxton algorithm, and the iteration is time-consuming without Fourier transform or other acceleration techniques. Few studies on designing holograms using artificial intelligence methods have been conducted. In this Letter, a three-dimensional (3D)-printed hologram for terahertz (THz) imaging based on a diffractive neural network (DNN) is proposed. Target imaging letters “THZ” with uniform field amplitude are assigned to a predefined imaging surface. Quantified phase profiles are primarily obtained by training the DNN with the target image and input field pattern. The entire training process takes only 60 s. Consequently, the hologram, that is, a two-dimensional array of dielectric posts with variational heights that store phase information, is fabricated using a 3D printer. The full-wave simulation and experimental results demonstrate the capability of the proposed hologram to achieve high-quality imaging in the THz regime. The proposed lens and design strategy may open new possibilities in display, optical-data storage, and optical encryption.
© 2020 Optical Society of America

Monday, April 8, 2019

Abstract-3-D Printed Circularly Polarized Modified Fresnel Lens Operating at Terahertz Frequencies



Chi Hou Chan, Geng-Bo Wu, Ka Fai Chan, Shi-Wei Qu, Yuan-Song Zeng, 

https://ieeexplore.ieee.org/document/8676352

In this paper, a novel 3-dimensional (3-D) printed circularly polarized (CP) modified Fresnel lens antenna operating at 300GHz is introduced. By virtue of the superior geometric flexibility of the 3-D printing technique, a modified Fresnel lens consisting of subwavelength discrete dielectric posts in the odd-numbered Fresnel zones is proposed. It is further demonstrated that by integrating dielectric anisotropic metamaterial, the modified Fresnel lens can realize CP radiation fed by a simple linearly polarized (LP) open-ended waveguide (OEWG). The 3-D printing approach is also investigated to push the performance envelops of the 3-D printer for realization of the THz CP lens. The measured results show that the axial ratios (AR) of the fabricated antenna prototype are smaller than 3dB from 265 to 320GHz. Moreover, the modified Fresnel lens has a maximum gain of 27.4dBic, which is 0.9dB lager than that of the conventional Fresnel zone plane antenna (FZPA). These validate the concept, the design, and the fabricated prototype.