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Sub-100 fs pulse generation from dispersion-managed mode-locked Er:ZBLAN fiber laser at 2.8 μm

Published online by Cambridge University Press:  04 November 2024

Xiabing Zhou
Affiliation:
School of Physics and Astronomy, Key Laboratory for Laser Plasmas (Ministry of Education), Collaborative Innovation Center of IFSA (CICIFSA), Shanghai Jiao Tong University, Shanghai, China
Zhipeng Qin*
Affiliation:
School of Physics and Astronomy, Key Laboratory for Laser Plasmas (Ministry of Education), Collaborative Innovation Center of IFSA (CICIFSA), Shanghai Jiao Tong University, Shanghai, China
Guoqiang Xie*
Affiliation:
School of Physics and Astronomy, Key Laboratory for Laser Plasmas (Ministry of Education), Collaborative Innovation Center of IFSA (CICIFSA), Shanghai Jiao Tong University, Shanghai, China
*
Correspondence to: Z. Qin and G. Xie, School of Physics and Astronomy, Key Laboratory for Laser Plasmas (Ministry of Education), Collaborative Innovation Center of IFSA (CICIFSA), Shanghai Jiao Tong University, Shanghai 200240, China. Emails: lorance1205@sjtu.edu.cn (Z. Qin); and xiegq@sjtu.edu.cn (G. Xie)
Correspondence to: Z. Qin and G. Xie, School of Physics and Astronomy, Key Laboratory for Laser Plasmas (Ministry of Education), Collaborative Innovation Center of IFSA (CICIFSA), Shanghai Jiao Tong University, Shanghai 200240, China. Emails: lorance1205@sjtu.edu.cn (Z. Qin); and xiegq@sjtu.edu.cn (G. Xie)

Abstract

We demonstrate the sub-100 fs pulse generation from a dispersion-managed mode-locked Er:ZBLAN fiber laser at 2.8 μm. Both numerical simulation and experiment demonstrate that stretched-pulse and dissipative soliton mode lockings coexist in the near-zero-dispersion region of a fluoride fiber laser. With fine dispersion management, the shortest pulse of 95 fs was obtained from the stretched-pulse mode-locked Er:ZBLAN fiber laser, with an average power of 280 mW and repetition rate of 52 MHz. To the best of our knowledge, this is the shortest pulse to date directly generated from a mid-infrared mode-locked fluoride fiber laser.

Information

Type
Letter
Creative Commons
Creative Common License - CCCreative Common License - BY
This is an Open Access article, distributed under the terms of the Creative Commons Attribution licence (https://creativecommons.org/licenses/by/4.0), which permits unrestricted re-use, distribution and reproduction, provided the original article is properly cited.
Copyright
© The Author(s), 2024. Published by Cambridge University Press in association with Chinese Laser Press
Figure 0

Figure 1 Evolution of pulse duration versus the net cavity dispersion. Numerical simulation is conducted with the following key parameters: fiber length of 3.07 m, fiber dispersion βfiber of –0.09 ps2/m, fiber nonlinear coefficient γfiber of 1.72×10–4 (W⋅m)–1 and Ge dispersion βGe of +1.68 ps2/m[16,2023]. The experimental data are obtained based on the experimental setup depicted in Figure 4.

Figure 1

Figure 2 Simulation results of dispersion-managed mode-locked pulses at the net cavity dispersion of +0.06 ps2. Evolution of pulse duration: (a) the stretched pulse and (b) the dissipative soliton. Evolution of the spectral profile and output spectrum: (c) the stretched pulse and (d) the dissipative soliton.

Figure 2

Figure 3 Output pulse profiles and chirps of (a) the modeled stretched pulse and (b) the modeled dissipative soliton at the net cavity dispersion of +0.06 ps2.

Figure 3

Figure 4 Schematic of a dispersion-managed mode-locked Er:ZBLAN fiber laser. λ/4, quarter-wave plate; λ/2, half-wave plate; ISO, polarization-dependent isolator; DM1,2, dichroic mirrors; L1,2, aspheric lenses.

Figure 4

Figure 5 Experimental results of dispersion-managed mode-locked Er:ZBLAN fiber laser at the net cavity dispersion of +0.06 ps2. (a) Autocorrelation trace and (b) spectrum of the stretched pulse. (c) Autocorrelation trace and (d) spectrum of the dissipative soliton.

Figure 5

Figure 6 Experimental results of stretched-pulse mode-locked Er:ZBLAN fiber laser at the net cavity dispersion of +0.08 ps2. (a) Dependence of pulse duration and energy on the pump power, (b) autocorrelation trace (inset: autocorrelation trace within the 30 ps window), and (c) optical spectrum.