• Chinese Optics Letters
  • Vol. 23, Issue 7, 071405 (2025)
Jihui Zheng1,2, Youwei Wang1, Xiaoling Jin1, Chen Jiang1..., Bing Sun1, Fumin Zhang2 and Zuxing Zhang1,*|Show fewer author(s)
Author Affiliations
  • 1Advanced Photonic Technology Laboratory, College of Electronic and Optical Engineering and College of Flexible Electronics (Future Technology), Nanjing University of Posts and Telecommunications, Nanjing 210023, China
  • 2State Key Laboratory of Precision Measurement Technology and Instruments, Tianjin University, Tianjin 300072, China
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    DOI: 10.3788/COL202523.071405 Cite this Article Set citation alerts
    Jihui Zheng, Youwei Wang, Xiaoling Jin, Chen Jiang, Bing Sun, Fumin Zhang, Zuxing Zhang, "All-optical tuning of a multi-walled carbon nanotube-coated microcavity," Chin. Opt. Lett. 23, 071405 (2025) Copy Citation Text show less
    Fabrication of a MWCNT-coated microcavity. (a) Fabrication process. (b) Image of a microcavity coated without MWCNT. (c) Image of a microcavity coated with MWCNT. (d) Q-factor measurement of a microcavity without MWCNT coating. (e) Q-factor measurement of a microcavity with MWCNT coating.
    Fig. 1. Fabrication of a MWCNT-coated microcavity. (a) Fabrication process. (b) Image of a microcavity coated without MWCNT. (c) Image of a microcavity coated with MWCNT. (d) Q-factor measurement of a microcavity without MWCNT coating. (e) Q-factor measurement of a microcavity with MWCNT coating.
    Experimental setup for all-optical tuning based on a MWCNT-coated microcavity. FPC, fiber polarization controller; PD, photodetector; OSC, oscilloscope; OSA, optical spectrum analyzer.
    Fig. 2. Experimental setup for all-optical tuning based on a MWCNT-coated microcavity. FPC, fiber polarization controller; PD, photodetector; OSC, oscilloscope; OSA, optical spectrum analyzer.
    Resonance changes of a MWCNT-coated microcavity under all-optical tuning. (a) Microcavity resonant peak at 0 mW modulation laser power. (b) Resonance changes of the microcavity at different modulation laser powers.
    Fig. 3. Resonance changes of a MWCNT-coated microcavity under all-optical tuning. (a) Microcavity resonant peak at 0 mW modulation laser power. (b) Resonance changes of the microcavity at different modulation laser powers.
    Resonance wavelength variation with modulation laser power.
    Fig. 4. Resonance wavelength variation with modulation laser power.
    Response time of all-optical tuning based on a MWCNT-coated microcavity. (a) Microcavity response speed when the 980 nm modulation laser is turned on. (b) Microcavity response speed when the 980 nm modulation laser is turned off.
    Fig. 5. Response time of all-optical tuning based on a MWCNT-coated microcavity. (a) Microcavity response speed when the 980 nm modulation laser is turned on. (b) Microcavity response speed when the 980 nm modulation laser is turned off.
    Emission spectra of a MWCNT-coated microcavity under different powers of the 980 nm modulation laser, with power values shown in the upper right corner. (a)–(f) Intracavity spectra as the 980 nm modulation laser power is gradually reduced. (f) Single soliton state comb. (g)–(h) Intracavity spectra as the 980 nm modulation laser power is increased.
    Fig. 6. Emission spectra of a MWCNT-coated microcavity under different powers of the 980 nm modulation laser, with power values shown in the upper right corner. (a)–(f) Intracavity spectra as the 980 nm modulation laser power is gradually reduced. (f) Single soliton state comb. (g)–(h) Intracavity spectra as the 980 nm modulation laser power is increased.
    Jihui Zheng, Youwei Wang, Xiaoling Jin, Chen Jiang, Bing Sun, Fumin Zhang, Zuxing Zhang, "All-optical tuning of a multi-walled carbon nanotube-coated microcavity," Chin. Opt. Lett. 23, 071405 (2025)
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