• Laser & Optoelectronics Progress
  • Vol. 60, Issue 11, 1106029 (2023)
Yunkai Yang1, Jialin Cheng1, Yujie Wen1, Heng Shen1..., Zhihui Yan1,2,* and Xiaojun Jia1,2|Show fewer author(s)
Author Affiliations
  • 1State Key Laboratory of Quantum Optics and Quantum Optics Devices, Institute of Opto-Electronics, Shanxi University, Taiyuan 030006, Shanxi, China
  • 2Collaborative Innovation Center of Extreme Optics, Shanxi University, Taiyuan 030006, Shanxi, China
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    DOI: 10.3788/LOP230441 Cite this Article Set citation alerts
    Yunkai Yang, Jialin Cheng, Yujie Wen, Heng Shen, Zhihui Yan, Xiaojun Jia. Evolution and Thermal Self-Stability Analysis of Optical Frequency Combs in Silicon Nitride Microcavity[J]. Laser & Optoelectronics Progress, 2023, 60(11): 1106029 Copy Citation Text show less
    Principle of microcavity optical frequency comb. (a) Optical propagation process of microcavity; (b) principle of FWM; (c) principle of primary comb generation based on degenerate FWM; (d) principle of comb extension based on cascaded FWM; (e) principle of sub-comb generation based on cascaded FWM
    Fig. 1. Principle of microcavity optical frequency comb. (a) Optical propagation process of microcavity; (b) principle of FWM; (c) principle of primary comb generation based on degenerate FWM; (d) principle of comb extension based on cascaded FWM; (e) principle of sub-comb generation based on cascaded FWM
    Silicon nitride microcavity optical frequency comb test system
    Fig. 2. Silicon nitride microcavity optical frequency comb test system
    Wavelength scanning transmission test and detuning analysis of silicon nitride microcavity. (a) Microcavity transmission spectrum during forward scanning(inset: transmission spectrum of microcavity with 50 μW pump); (b) resonance state in the process of power increase in microcavity; (c) non-resonant state of microcavity after power jump
    Fig. 3. Wavelength scanning transmission test and detuning analysis of silicon nitride microcavity. (a) Microcavity transmission spectrum during forward scanning(inset: transmission spectrum of microcavity with 50 μW pump); (b) resonance state in the process of power increase in microcavity; (c) non-resonant state of microcavity after power jump
    Optical frequency comb spectral characterizations in silicon nitride microcavity. (a) Spectrogram without sideband; (b) primary sideband spectrogram; (c) spectrum of “Turing Ring” states produced in the late second stage; (d) spectrum of “Turing Ring” states produced in the third stage; (e) spectral diagram of chaotic states generated by high power pumping
    Fig. 4. Optical frequency comb spectral characterizations in silicon nitride microcavity. (a) Spectrogram without sideband; (b) primary sideband spectrogram; (c) spectrum of “Turing Ring” states produced in the late second stage; (d) spectrum of “Turing Ring” states produced in the third stage; (e) spectral diagram of chaotic states generated by high power pumping
    Distribution and resonant states of equilibrium solutions. (a) Distribution of three equilibrium solutions; (b), (c), and (d) are the cavity real-time resonant states corresponding to the warm cavity stable solution, warm cavity unstable solution, and cold cavity stable solution, respectively.
    Fig. 5. Distribution and resonant states of equilibrium solutions. (a) Distribution of three equilibrium solutions; (b), (c), and (d) are the cavity real-time resonant states corresponding to the warm cavity stable solution, warm cavity unstable solution, and cold cavity stable solution, respectively.
    Disturbance test of thermal self-stability of microcavity
    Fig. 6. Disturbance test of thermal self-stability of microcavity
    Yunkai Yang, Jialin Cheng, Yujie Wen, Heng Shen, Zhihui Yan, Xiaojun Jia. Evolution and Thermal Self-Stability Analysis of Optical Frequency Combs in Silicon Nitride Microcavity[J]. Laser & Optoelectronics Progress, 2023, 60(11): 1106029
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