• Photonics Research
  • Vol. 6, Issue 6, 549 (2018)
Zhe Kang1、2, Mingyi Liu2, Zhenwei Li1, Siqing Li2, Zhixu Jia2, Chengzhi Liu1, Weiping Qin2, and Guanshi Qin2、*
Author Affiliations
  • 1Changchun Observatory, NAO, Chinese Academy of Sciences, Changchun 130012, China
  • 2State Key Laboratory on Integrated Optoelectronics, College of Electronic Science & Engineering, Jilin University, Changchun 130012, China
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    DOI: 10.1364/PRJ.6.000549 Cite this Article Set citation alerts
    Zhe Kang, Mingyi Liu, Zhenwei Li, Siqing Li, Zhixu Jia, Chengzhi Liu, Weiping Qin, Guanshi Qin. Passively Q-switched erbium doped fiber laser using a gold nanostars based saturable absorber[J]. Photonics Research, 2018, 6(6): 549 Copy Citation Text show less
    Characterization of the GNSs and GNS film. (a) TEM image of GNSs at scale of 100 nm; inset: photographs of GNS aqueous solution and the TEM image of GNSs at a scale of 20 nm. (b) SEM image of GNS film at scale of 500 nm; inset: the photograph of GNS film.
    Fig. 1. Characterization of the GNSs and GNS film. (a) TEM image of GNSs at scale of 100 nm; inset: photographs of GNS aqueous solution and the TEM image of GNSs at a scale of 20 nm. (b) SEM image of GNS film at scale of 500 nm; inset: the photograph of GNS film.
    Absorption spectra of GNS solution (red line) and GNS film (black line).
    Fig. 2. Absorption spectra of GNS solution (red line) and GNS film (black line).
    Setup of measurement of saturable absorption by balanced twin detector measurement technology.
    Fig. 3. Setup of measurement of saturable absorption by balanced twin detector measurement technology.
    Dependence of the transmittance of the GNS film on the incident pump peak power density.
    Fig. 4. Dependence of the transmittance of the GNS film on the incident pump peak power density.
    Schematic of the experimental setup for the GNS based passively Q-switched EDFL. Laser diode (LD), wavelength division multiplexer (WDM), Er3+ doped fiber (EDF), isolator (ISO), output coupler (OC), optical spectrum analyser (OSA). Inset: TEM image of GNS.
    Fig. 5. Schematic of the experimental setup for the GNS based passively Q-switched EDFL. Laser diode (LD), wavelength division multiplexer (WDM), Er3+ doped fiber (EDF), isolator (ISO), output coupler (OC), optical spectrum analyser (OSA). Inset: TEM image of GNS.
    Q-switched pulse output characterization in the EDF laser cavity with a GNS SA. (a) Optical spectra of CW laser and Q-switched pulsed laser. (b) Pulse train and (c) single pulse characteristics of Q-switched pulsed laser for a pump power of 120 mW. (d) Pulse repetition rate and pulse width versus pump power.
    Fig. 6. Q-switched pulse output characterization in the EDF laser cavity with a GNS SA. (a) Optical spectra of CW laser and Q-switched pulsed laser. (b) Pulse train and (c) single pulse characteristics of Q-switched pulsed laser for a pump power of 120 mW. (d) Pulse repetition rate and pulse width versus pump power.
    Measured emission spectra of the Q-switched laser based on the GNS SA.
    Fig. 7. Measured emission spectra of the Q-switched laser based on the GNS SA.
    Relationship between the average output powers and pump powers.
    Fig. 8. Relationship between the average output powers and pump powers.
    Zhe Kang, Mingyi Liu, Zhenwei Li, Siqing Li, Zhixu Jia, Chengzhi Liu, Weiping Qin, Guanshi Qin. Passively Q-switched erbium doped fiber laser using a gold nanostars based saturable absorber[J]. Photonics Research, 2018, 6(6): 549
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