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High-peak-power temporally shaped nanosecond fiber laser immune to SPM-induced spectral broadening

Published online by Cambridge University Press:  26 April 2019

Rongtao Su
Affiliation:
College of Advanced Interdisciplinary Studies, National University of Defense Technology, Changsha 410073, China State Key Laboratory of Pulsed Power Laser Technology, Changsha 410073, China Hunan Provincial Key Laboratory of High Energy Laser Technology, Changsha 410073, China
Pengfei Ma
Affiliation:
College of Advanced Interdisciplinary Studies, National University of Defense Technology, Changsha 410073, China State Key Laboratory of Pulsed Power Laser Technology, Changsha 410073, China Hunan Provincial Key Laboratory of High Energy Laser Technology, Changsha 410073, China
Pu Zhou*
Affiliation:
College of Advanced Interdisciplinary Studies, National University of Defense Technology, Changsha 410073, China State Key Laboratory of Pulsed Power Laser Technology, Changsha 410073, China Hunan Provincial Key Laboratory of High Energy Laser Technology, Changsha 410073, China
Zilun Chen
Affiliation:
College of Advanced Interdisciplinary Studies, National University of Defense Technology, Changsha 410073, China State Key Laboratory of Pulsed Power Laser Technology, Changsha 410073, China Hunan Provincial Key Laboratory of High Energy Laser Technology, Changsha 410073, China
Xiaolin Wang
Affiliation:
College of Advanced Interdisciplinary Studies, National University of Defense Technology, Changsha 410073, China State Key Laboratory of Pulsed Power Laser Technology, Changsha 410073, China Hunan Provincial Key Laboratory of High Energy Laser Technology, Changsha 410073, China
Yanxing Ma
Affiliation:
College of Advanced Interdisciplinary Studies, National University of Defense Technology, Changsha 410073, China State Key Laboratory of Pulsed Power Laser Technology, Changsha 410073, China Hunan Provincial Key Laboratory of High Energy Laser Technology, Changsha 410073, China
Jian Wu
Affiliation:
College of Advanced Interdisciplinary Studies, National University of Defense Technology, Changsha 410073, China State Key Laboratory of Pulsed Power Laser Technology, Changsha 410073, China Hunan Provincial Key Laboratory of High Energy Laser Technology, Changsha 410073, China
Xiaojun Xu
Affiliation:
College of Advanced Interdisciplinary Studies, National University of Defense Technology, Changsha 410073, China State Key Laboratory of Pulsed Power Laser Technology, Changsha 410073, China Hunan Provincial Key Laboratory of High Energy Laser Technology, Changsha 410073, China
*
Correspondence to:  P. Zhou, No. 109 Deya Road, Changsha 410073, China. Email: zhoupu203@163.com

Abstract

High-peak-power transform-limited narrow-linewidth nanosecond all-fiber lasers are desired in a range of applications. However, their linewidths will be broadened by self-phase modulation (SPM). We propose a novel concept that generates transform-limited laser pulses by temporally shaping the pulse seed. The impact of the pulse shape on SPM-induced spectral broadening was studied numerically and experimentally. It was found theoretically that the square-shape pulsed laser is immune to SPM-induced spectral broadening. Based on this principle, we built a high-peak-power, linearly polarized, square-shape nanosecond all-fiber laser in a master oscillator power amplifier (MOPA) configuration. Stimulated Brillouin scattering (SBS) limited peak powers of 4.02 kW, 5.06 kW, 6.52 kW and 9.30 kW were obtained at pulse widths of 8 ns, 7 ns, 6 ns and 5 ns. Thanks to the square-shape pulsed seed, the linewidths at maximum peak power remained at 129.5 MHz, 137.6 MHz, 156.2 MHz and 200.1 MHz, respectively, close to the transform-limited values of 110.8 MHz, 126.6 MHz, 147.7 MHz and 177.3 MHz.

Information

Type
Research Article
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 (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted re-use, distribution, and reproduction in any medium, provided the original work is properly cited.
Copyright
© The Author(s) 2019
Figure 0

Figure 1. Calculated pulse shapes and the corresponding spectra. (a) Gaussian-shape pulse and the corresponding (b), (c) spectra; (d) sawtooth-shape pulse and the corresponding (e), (f) spectra; (g) square-shape pulse and the corresponding (h), (i) spectra; (j) distorted-square-shape pulse and the corresponding (k), (l) spectra.

Figure 1

Figure 2. Experimental setup for spectral measurement of Gaussian-like and square-like pulses. EOIM, electro-optic intensity modulator; AFG, arbitrary function generator; SWG, square wave generator; SMF-PA, single-mode-fiber-based preamplifier; LD, laser diode; WDM, wavelength division multiplexer; PM YDF, polarization-maintained Yb-doped fiber; BPF, band pass filter; ISO: isolator; FPI, Fabry–Perot interferometer.

Figure 2

Figure 3. Measured pulse shapes and the corresponding spectra. (a) Gaussian-like pulse and corresponding spectra at the (b) input and (c) output of the GDF; (d) square-like pulse and corresponding spectra at the (e) input and (f) output of the GDF.

Figure 3

Figure 4. Experimental setup of the LMA fiber amplifier. LD, laser diode; FPI, Fabry–Perot interferometer; P1, P2, power meter; PM YDF, polarization-maintained Yb-doped fiber; CLS, cladding laser stripper; CO, collimator.

Figure 4

Figure 5. Average backward propagating power of the Gaussian-like pulses as a function of the forward propagating output power.

Figure 5

Figure 6. Measured pulse shape and the corresponding spectra of the Gaussian-like pulse. (a) Output pulse shape; (b) spectrum of the pulsed seed; (c) spectrum of the output pulses.

Figure 6

Figure 7. Average backward propagating power of square-like pulses as functions of the (a) average forward propagating output and (b) peak power.

Figure 7

Figure 8. Measured pulse shapes and the corresponding spectra of square-like pulses. (a) 8 ns pulse and (b), (c) corresponding spectra; (d) 7 ns pulse and (e), (f) corresponding spectra; (g) 6 ns pulse and (h), (i) corresponding spectra; (j) 5 ns pulse and (k), (l) corresponding spectra.

Figure 8

Table 1. Maximum output power and the corresponding linewidth in the main amplifier.

Figure 9

Figure 9. Measured (a) spectra and (b) PER in the main amplifier for 5 ns pulses.