An optically transparent rectifying metasurface for 2.4/5.8 GHz dual-band RF energy harvesting

L Lin Dong (Center for Infection Biology, School of Basic Medical Sciences, Tsinghua University) L Liming Si (Beijing Key Laboratory of Millimeter Wave and Terahertz Technology, School of Integrated Circuits and Electronics, Beijing Institute of Technology 1 , Beijing 100081,) B Boyang Liu (State Key Laboratory of Heavy Oil Processing, College of Chemical Engineering and Environment) Q Qitao Shen (Beijing Key Laboratory of Millimeter Wave and Terahertz Technology, School of Integrated Circuits and Electronics, Beijing Institute of Technology 1 , Beijing 100081,) R Rong Niu X Xiue Bao (Beijing Key Laboratory of Millimeter Wave and Terahertz Technology, School of Integrated Circuits and Electronics, Beijing Institute of Technology 1 , Beijing 100081,) H Houjun Sun (Beijing Key Laboratory of Millimeter Wave and Terahertz Technology, School of Integrated Circuits and Electronics, Beijing Institute of Technology 1 , Beijing 100081,) W Weiren Zhu (Department of Electronic Engineering, Shanghai Jiao Tong University 3 , Shanghai 200240,)

Abstract

In this paper, an optically transparent rectifying metasurface system (RMS) is designed and validated for simultaneously harvesting radio frequency (RF) energy while enabling the efficient transmission of visible light. The RMS comprises an optically transparent metasurface absorber (OTMA) based on indium tin oxide materials and a voltage-doubling rectifier circuit. The proposed RMS features several advantages, including polarization insensitivity, wide incidence angle coverage, low profile, and the ability to operate at low incident power densities. Utilizing a stacked structure, the RMS and the solar cell can provide a more hybrid output power to accommodate more application scenarios. To validate its performance, a prototype 3 × 3 OTMA array was designed, fabricated, and measured. Results demonstrate that the fabricated RMS achieves RF to DC efficiencies of 19.64% at 2.4 GHz and 7.92% at 5.8 GHz, with an impressive 80% optical transparency. Furthermore, solar energy harvesting tests show that the measured maximum power point for the RF/solar hybrid energy harvesting is 13.11% higher than that of a single solar panel under a light intensity of 257 lux.

Article Details

Volume / Issue Vol. 126, Issue 1
Published January 06, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (8)

L

Lin Dong

Center for Infection Biology, School of Basic Medical Sciences, Tsinghua University

L

Liming Si

Beijing Key Laboratory of Millimeter Wave and Terahertz Technology, School of Integrated Circuits and Electronics, Beijing Institute of Technology 1 , Beijing 100081,

B

Boyang Liu

State Key Laboratory of Heavy Oil Processing, College of Chemical Engineering and Environment

Q

Qitao Shen

Beijing Key Laboratory of Millimeter Wave and Terahertz Technology, School of Integrated Circuits and Electronics, Beijing Institute of Technology 1 , Beijing 100081,

R

Rong Niu

X

Xiue Bao

Beijing Key Laboratory of Millimeter Wave and Terahertz Technology, School of Integrated Circuits and Electronics, Beijing Institute of Technology 1 , Beijing 100081,

H

Houjun Sun

Beijing Key Laboratory of Millimeter Wave and Terahertz Technology, School of Integrated Circuits and Electronics, Beijing Institute of Technology 1 , Beijing 100081,

W

Weiren Zhu

Department of Electronic Engineering, Shanghai Jiao Tong University 3 , Shanghai 200240,