Affiliation:
1. Chinese Academy of Sciences
2. University of Chinese Academy of Sciences
3. The 29th Research Institute of China Electronics Technology Group Corporation
Abstract
As the main branch of microwave photonics, radio-over-fiber technology provides high bandwidth, low-loss, and long-distance propagation capability, facilitating wide applications ranging from telecommunication to wireless networks. With ultrashort pulses as the optical carrier, a large capacity is further endowed. However, the wide bandwidth of ultrashort pulses results in the severe vulnerability of high-frequency radio frequency (RF) signals to fiber dispersion. With a time-energy entangled biphoton source as the optical carrier combined with the single-photon detection technique, a quantum microwave photonics method in radio-over-fiber systems is proposed and demonstrated experimentally. The results show that it not only realizes unprecedented nonlocal RF signal modulation with strong resistance to the dispersion but also provides an alternative mechanism to distill the RF signal out from the dispersion effectively. Furthermore, the spurious-free dynamic ranges of the nonlocally modulated and distilled RF signals have been significantly improved. With the ultra-weak detection and the high-speed processing advantages endowed by the low-timing-jitter single-photon detection, the quantum microwave photonics method opens new possibilities in modern communication and networks.
Funder
National Natural Science Foundation of China
National Key Research and Development Program of China
Key Project of Frontier Science Research of Chinese Academy of Sciences
Youth Innovation Promotion Association of the Chinese Academy of Sciences
Western Young Scholar Project of Chinese academy of sciences
Strategic Priority Research Program of Chinese academy of sciences
Subject
Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials
Cited by
10 articles.
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