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南昌航空大学 无损检测教育部重点实验室,南昌 330063
王梦宇,副教授。E-mail:mengyu@nchu.edu.cn
收稿:2025-10-08,
修回:2025-10-27,
纸质出版:2025-12-10
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王梦宇. 氟化镁微腔光频梳研究进展[J]. 光通信研究,2025(6): 250323.
Wang M Y. Research Progress on MgF2 Microcavity Optical Frequency Combs[J]. Study on Optical Communications, 2025(6): 250323.
王梦宇. 氟化镁微腔光频梳研究进展[J]. 光通信研究,2025(6): 250323. DOI: 10.13756/j.gtxyj.2025.250323.
Wang M Y. Research Progress on MgF2 Microcavity Optical Frequency Combs[J]. Study on Optical Communications, 2025(6): 250323. DOI: 10.13756/j.gtxyj.2025.250323.
微腔光频梳(OFCs)凭借其小型化、功耗低、可集成和高相干性的优势,在双梳光谱学、相干光通信、激光雷达和光钟等领域具有显著的应用价值。文章首先概述了微腔OFCs的研究意义,然后对微腔OFCs进行了介绍;接着简述了氟化镁(MgF
2
)微腔的制备和封装技术;然后阐述了MgF
2
微腔OFCs的产生和调控方法;最后重点介绍了MgF
2
微腔OFCs的应用,包括微波光子、光通信和精密计量等。
Microcavity Optical Frequency Combs (OFCs) have significant application value in dual-comb spectroscopy
coherent optical communication
laser radar
optical clocks
and other fields due to their advantages of miniaturization
low power consumption
integration
and high c
oherence. The article first outlines the research significance of microcavity OFCs
then briefly describes the preparation and packaging of Magnesium Fluoride (MgF
2
) microcavities. Next
the article introduces the microcavity OFCs and focuses on the generation and regulation methods of MgF
2
microcavity OFCs. Finally
it highlights the applications of MgF
2
microcavity OFCs
including microwave photonics
optical communication
and precision measurement.
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