Design of 1-Bit Digital Reconfigurable Reflective Metasurface for Beam-Scanning

A 1-bit digital reconfigurable reflective metasurface (RRM) with 20 × 20 cells is presented, fabricated and measured for beam-scanning performance in this paper. The cell is designed with a single layer structure and one varactor diode, controlled electronically. The cell’s phase compensation is ove...

Full description

Bibliographic Details
Main Authors: Shuncheng Tian, Haixia Liu, Long Li
Format: Article
Language:English
Published: MDPI AG 2017-08-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/7/9/882
_version_ 1818064137054322688
author Shuncheng Tian
Haixia Liu
Long Li
author_facet Shuncheng Tian
Haixia Liu
Long Li
author_sort Shuncheng Tian
collection DOAJ
description A 1-bit digital reconfigurable reflective metasurface (RRM) with 20 × 20 cells is presented, fabricated and measured for beam-scanning performance in this paper. The cell is designed with a single layer structure and one varactor diode, controlled electronically. The cell’s phase compensation is over 180° between 3 GHz and 4 GHz and the two states with 180° phase difference are selected as coding “0” and coding “1”. By the fuzzy quantification theory, all the elements on the RRM are set to be coding “0” or coding “1” according to the phase compensation calculated by MATLAB. Furthermore, by changing the coding of the RRM, it can achieve beam-scanning. The simulation results show that the beam-scanning range is over ±60°. The RRM prototype is fabricated and experimentally tested for principle. The gain of the RRM is 18 dB and the 3 dB bandwidth is about 16.6%. The 1-bit digital RRM is preferred in practical implementations due to less error and much easier bias voltage control. The proposed RRM successfully balances the performance and system complexity, especially in the large-scale antenna designs. The experimental and simulated results are in good agreement to prove the correctness and feasibility of the design of the 1-bit digital RRM.
first_indexed 2024-12-10T14:31:13Z
format Article
id doaj.art-358e2e979524438f9c4bfd48aaa3a670
institution Directory Open Access Journal
issn 2076-3417
language English
last_indexed 2024-12-10T14:31:13Z
publishDate 2017-08-01
publisher MDPI AG
record_format Article
series Applied Sciences
spelling doaj.art-358e2e979524438f9c4bfd48aaa3a6702022-12-22T01:44:55ZengMDPI AGApplied Sciences2076-34172017-08-017988210.3390/app7090882app7090882Design of 1-Bit Digital Reconfigurable Reflective Metasurface for Beam-ScanningShuncheng Tian0Haixia Liu1Long Li2Key Laboratory of High Speed Circuit Design and EMC of Ministry of Education, School of Electronic Engineering, Collaborative Innovation Center of Information Sensing and Understanding, Xidian University, Xi’an 710071, ChinaKey Laboratory of High Speed Circuit Design and EMC of Ministry of Education, School of Electronic Engineering, Collaborative Innovation Center of Information Sensing and Understanding, Xidian University, Xi’an 710071, ChinaKey Laboratory of High Speed Circuit Design and EMC of Ministry of Education, School of Electronic Engineering, Collaborative Innovation Center of Information Sensing and Understanding, Xidian University, Xi’an 710071, ChinaA 1-bit digital reconfigurable reflective metasurface (RRM) with 20 × 20 cells is presented, fabricated and measured for beam-scanning performance in this paper. The cell is designed with a single layer structure and one varactor diode, controlled electronically. The cell’s phase compensation is over 180° between 3 GHz and 4 GHz and the two states with 180° phase difference are selected as coding “0” and coding “1”. By the fuzzy quantification theory, all the elements on the RRM are set to be coding “0” or coding “1” according to the phase compensation calculated by MATLAB. Furthermore, by changing the coding of the RRM, it can achieve beam-scanning. The simulation results show that the beam-scanning range is over ±60°. The RRM prototype is fabricated and experimentally tested for principle. The gain of the RRM is 18 dB and the 3 dB bandwidth is about 16.6%. The 1-bit digital RRM is preferred in practical implementations due to less error and much easier bias voltage control. The proposed RRM successfully balances the performance and system complexity, especially in the large-scale antenna designs. The experimental and simulated results are in good agreement to prove the correctness and feasibility of the design of the 1-bit digital RRM.https://www.mdpi.com/2076-3417/7/9/8821-bitdigitalRRMvaractor diodebeam-scanning
spellingShingle Shuncheng Tian
Haixia Liu
Long Li
Design of 1-Bit Digital Reconfigurable Reflective Metasurface for Beam-Scanning
Applied Sciences
1-bit
digital
RRM
varactor diode
beam-scanning
title Design of 1-Bit Digital Reconfigurable Reflective Metasurface for Beam-Scanning
title_full Design of 1-Bit Digital Reconfigurable Reflective Metasurface for Beam-Scanning
title_fullStr Design of 1-Bit Digital Reconfigurable Reflective Metasurface for Beam-Scanning
title_full_unstemmed Design of 1-Bit Digital Reconfigurable Reflective Metasurface for Beam-Scanning
title_short Design of 1-Bit Digital Reconfigurable Reflective Metasurface for Beam-Scanning
title_sort design of 1 bit digital reconfigurable reflective metasurface for beam scanning
topic 1-bit
digital
RRM
varactor diode
beam-scanning
url https://www.mdpi.com/2076-3417/7/9/882
work_keys_str_mv AT shunchengtian designof1bitdigitalreconfigurablereflectivemetasurfaceforbeamscanning
AT haixialiu designof1bitdigitalreconfigurablereflectivemetasurfaceforbeamscanning
AT longli designof1bitdigitalreconfigurablereflectivemetasurfaceforbeamscanning