Showing posts with label Haroldo T. Hattori. Show all posts
Showing posts with label Haroldo T. Hattori. Show all posts

Monday, August 19, 2019

Abstract-Deeply Subwavelength Metasurface Resonators for Terahertz Wavefront Manipulation


Mingkai Liu,  Quanlong Yang,  Ahmmed A. Rifat,   Vidur Raj,   Andrei Komar,   Jiaguang Han,   Mohsen Rahmani,   Haroldo T. Hattori,   Dragomir Neshev,   David A. Powell,   Ilya V. Shadrivov,

https://onlinelibrary.wiley.com/doi/abs/10.1002/adom.201900736?af=R

Metasurfaces offer a highly flexible platform for controlling the propagation and localization of electromagnetic waves. Due to the relatively large size of commonly used resonators, various undesirable effects including spatial dispersion and spurious diffraction occur, thus limiting the metasurface performance. To overcome these problems, one straightforward approach is to utilize deeply subwavelength metaunits. In contrast to conventional approaches that minimize the resonator size by reshaping the metallic patches, the capacitive gaps are reshaped, an approach which is more robust to material loss, minimizing the problem of overdamping. As an example, a novel design based on interdigital capacitors (meander gap) is introduced with extremely subwavelength gaps for use in the terahertz frequency range. The size of the new resonator can be reduced to below λ/30 in a reflective‐type terahertz metasurface, while maintaining the 2 π phase shift required for full wavefront control. Using an advanced electron‐beam lithography technique, a proof‐of‐concept experiment is performed and a 5 mm × 5 mm beam deflector is fabricated, with the capacitive gaps as small as 300 nm (≈λ/1130). The device performance is characterized using angle‐resolved time‐domain spectroscopy. The study provides useful insight for ultracompact metadevices based on deeply subwavelength metaunits working at terahertz frequencies and beyond.

Thursday, January 21, 2016

Abstract-Terahertz focusing of multiple wavelengths by graphene metasurfaces



http://scitation.aip.org/content/aip/journal/apl/108/3/10.1063/1.4940231?TRACK=RSS

Metasurfaces can achieve nearly arbitrary wavefront control based on manipulation of the wavephase profile. We propose a metasurface based on double graphene cut-wire resonatorswhich can cover the complete 2 phase region with high reflection efficiency. This full phase coverage is essential for efficient wavefront manipulation, without reflecting energy into unwanted channels. A mirror capable of focusing multiple wavelengths is demonstrated numerically based on the proposed structure. The mirror can effectively focus terahertz (THz)waves from 1.2 to 1.9 THz to the same focal point by changing the Fermi level of eachgrapheneresonator separately. The presented metasurface could provide a powerful platform for controlling THz waves, including focusing, beam steering, beam shaping, and holograph

Saturday, December 19, 2015

Abstract-Dynamic Terahertz Beam Steering Based on Graphene Metasurfaces


Liming LiuYair ZarateHaroldo T. Hattori

http://www.mathpubs.com/detail/1512.05425v1/Dynamic-Terahertz-Beam-Steering-Based-on-Graphene-Metasurfaces

A full (2π) phase modulation is critical for efficient wavefront manipulation. In this article, we propose a metasurface based on graphene long/short-strip resonators which are capable of implementing a dynamic 2π phase modulation by applying different voltages to different graphene resonators. The configuration is found to have high reflection efficiency (minimum 56%) and has a full phase modulation in a wide frequency range. Terahertz (THz) beam steering as large as 120 degrees (±60) is demonstrated in a broad frequency range (1.2 to 1.9 THz) by changing the Fermi levels of different graphene resonators accordingly. This metasurface can provide a new platform for effectively manipulating THz waves.