Integrated Ultra‐Wideband Dynamic Microwave Frequency Identification System in Lithium Niobate on Insulator

Author:

Wang LiHeng1,Han Zhen1,Zheng Yong1,Zhang Pu1,Jiang YongHeng1,Xiao HuiFu1,Wang BinJie1,Low Mei Xian2,Dubey Aditya2,Nguyen Thach Giang2,Boes Andreas234,Ren Guanghui2,Li Ming567,Mitchell Arnan2,Tian Yonghui1ORCID

Affiliation:

1. School of Physical Science and Technology Lanzhou University Lanzhou Gansu 730000 China

2. Integrated Photonics and Applications Centre (InPAC) School of Engineering RMIT University Melbourne VIC 3001 Australia

3. School of Electrical and Mechanical Engineering The University of Adelaide Adelaide SA 5005 Australia

4. Institute for Photonics Advanced Sensing The University of Adelaide Adelaide SA 5005 Australia

5. State Key Laboratory on Integrated Optoelectronics Institute of Semiconductors Chinese Academy of Sciences Beijing 100083 China

6. School of Electronic Electrical and Communication Engineering University of Chinese Academy of Sciences Beijing 100083 China

7. Center of Materials Science and Optoelectronics Engineering University of Chinese Academy of Sciences Beijing 100083 China

Abstract

AbstractThe capability to identify the frequency of unknown microwave signals with an ultra‐wide measurement bandwidth is highly desirable in radar astronomy, satellite communication, and 6G networks. Compared to electronic solutions, the integrated photonic technology‐enabled dynamic instantaneous frequency measurement (DIFM) approach is attractive as it offers unique advantages, such as ultra‐wide frequency measurement bandwidth, high flexibility, and immunity to electromagnetic interference. However, so far the bandwidth of the reported DIFM systems based on integrated photonic technology is limited to below 30 GHz due to the finite bandwidth of electro‐optical modulators (EOMs), limiting their applications, particularly in the field of millimeter wave technology (30–300 GHz). Here, the first integrated dynamic microwave instantaneous frequency measurement system with a record‐breaking operation bandwidth (ranging from 5 to 65 GHz) and low root‐mean‐square (RMS) error (≈300 MHz) is presented on the lithium niobate on insulator (LNOI) integrated photonic platform. This demonstration paves the way for high‐performance millimeter wave photonic integrated devices using the LNOI platform.

Funder

Australian Research Council

Natural Science Foundation of Gansu Province

National Natural Science Foundation of China

Publisher

Wiley

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