4.7 Article

Graphene-decorated microfiber knot as a broadband resonator for ultrahigh repetition-rate pulse fiber lasers

期刊

PHOTONICS RESEARCH
卷 6, 期 10, 页码 C1-C7

出版社

OPTICAL SOC AMER
DOI: 10.1364/PRJ.6.0000C1

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资金

  1. National Natural Science Foundation of China (NSFC) [11474108, 11304101, 61307058, 61378036]
  2. Guangdong Natural Science Funds for Distinguished Young Scholar [2014A030306019]
  3. Program for Outstanding Innovative Young Talents of Guangdong Province [2014TQ01X220]
  4. Pearl River S&T Nova Program of Guangzhou [2014J2200008]
  5. Natural Science Foundation of Guangdong Province [2014A030311037]
  6. Program for Outstanding Young Teachers in Guangdong Higher Education Institutes [YQ2015051]
  7. Science and Technology Project of Guangdong [2016B090925004]
  8. Foundation for Young Talents in Higher Education of Guangdong [2017KQNCX051]
  9. Science and Technology Program of Guangzhou [201607010245]
  10. Scientific Research Foundation of Young Teacher of South China Normal University [17KJ09]

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Searching for an ultrahigh-repetition-rate pulse on the order of hundreds of gigahertz (GHz) is still a challenging task in the ultrafast laser community. Recently, high-quality silicon/silica-based resonators were exploited to generate a high-repetition-rate pulse based on the filter-driven four-wave mixing effect in fiber lasers. However, despite their great performance, the silicon/silica-based resonators still have some drawbacks, such as single waveband operation and low coupling efficiency between the fiber and resonators. To overcome these drawbacks, herein we proposed an all-fiber broadband resonator fabricated by depositing the graphene onto a microfiber knot. As a proof-of-concept experiment, the graphene-deposited broadband microfiber knot resonator (MKR) was applied to Er- and Yb-doped fiber lasers operating at two different wavebands, respectively, to efficiently generate hundreds-of-GHz-repetition-rate pulses. Such a graphene-deposited broadband MKR could open some new applications in ultrafast laser technology, broadband optical frequency comb generation, and other related fields of photonics. (C) 2018 Chinese Laser Press

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