Remotely Controlled Laser‐Programmable Microwave Metasurfaces

Author:

Sun Ya Lun1,Zhang Xin Ge1,Huang Zhixiang2,Zhu Bingcheng3,Jiang Wei Xiang145ORCID,Zhang Zaichen345,Cui Tie Jun16

Affiliation:

1. State Key Laboratory of Millimeter Waves School of Information Science and Engineering Southeast University Nanjing 210096 China

2. Information Materials and Intelligent Sensing Laboratory of Anhui Province Anhui University Hefei 230039 China

3. National Mobile Communications Research Laboratory School of Information Science and Engineering Southeast University Nanjing 210096 China

4. Frontiers Science Center for Mobile Information Communication and Security Southeast University Nanjing 210096 China

5. Purple Mountain Laboratories Nanjing 211111 China

6. Pazhou Laboratory Guangzhou 510555 China

Abstract

AbstractProgrammable metasurfaces have brought significant advance to electromagnetic (EM) and related fields, making it easier and more efficient to manipulate the EM waves and realize higher tuning flexibility and range. However, how to achieve independent control of each unit of the programmable metasurface in a low‐overhead and wireless manner remains a challenge. Here, a laser‐programmable microwave metasurface is proposed and constructed, in which each unit can be controlled remotely by laser intensity in real time. The key is to design an ultra‐compact photoelectric passive boost circuit and integrate it into the meta‐unit. In this case, the light sensing‐to‐power‐to‐control‐to‐microwave manipulation process can be fully realized on the highly integrated meta‐unit, and thus the metasurface can be completely programmed at the unit level by laser coding patterns, without any wire connections and external power suppliers. As experimental demonstration, a phase‐coding laser‐programmable microwave metasurface is presented using a laser array. To show the capabilities of the metasurface, 2D beam scanning and vortex beam generation are demonstrated using 1‐bit phase modulations under the laser illuminations. This approach offers an effective route for the space lasers to manipulate microwaves accurately, which is helpful in developing advanced functional devices, passive platforms, and photoelectric hybrid systems.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Jiangsu Province

China Postdoctoral Science Foundation

Fundamental Research Funds for the Central Universities

Higher Education Discipline Innovation Project

High Level Innovation and Entrepreneurial Research Team Program in Jiangsu

Publisher

Wiley

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