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Comb-Like Frequency Conversions in Few Layer GaSe-Integrated Microfiber Resonators

  • Yuxin Ma
  • , Jiexing Wu
  • , Yitong Wang
  • , Fajun Xiao
  • , Xuetao Gan
  • , Jianlin Zhao
  • , Baohua Jia
  • , Biqiang Jiang
  • Northwestern Polytechnical University Xian
  • Royal Melbourne Institute of Technology University

Research output: Contribution to journalArticlepeer-review

Abstract

While advancements in optical fiber-based second harmonic generation (SHG) have leveraged novel waveguide designs and two-dimensional nonlinear material integration, conventional fiber schemes remain constrained by limited multi-frequency control and restricted efficiency growth. We demonstrate an all-fiber resonant SHG strategy achieving periodic enhancement and polarization modulation by integrating a few-layer GaSe crystal with a microfiber knot resonator (MKR). Benefitting from MKR-enabled resonant interaction with GaSe, which possesses ultrahigh second-order nonlinear susceptibility, the maximum excitation of comb-like SHG at resonant wavelengths achieves a 32-fold enhancement compared to GaSe-microfiber integration under continuous-wave laser pumping. Meanwhile, the twisted MKR structure facilitates dynamic polarization-dependent control of the split SHG wavelengths through pump polarization modulation. Experimental results further reveal distinct intensity patterns of SHG intensity in both under-coupling and over-coupling regimes. Our findings offer insights into accessing broad, efficient, polarization-controllable SHG combs for multifunctional nonlinear photonic devices with on-demand spectral tailoring capabilities.

Original languageEnglish
Article numbere71584
JournalAdvanced Optical Materials
Volume14
Issue number32
DOIs
StatePublished - 26 Aug 2026

Keywords

  • few-layer GaSe
  • microfiber knot resonator (MKR)
  • polarization dependence
  • second-harmonic generation

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