High-power nanosecond pulsed laser sources with a single frequency have many important applications, such as material processing, remote sensing, laser radar, nonlinear frequency generation, and coherent beam combination[
Chinese Optics Letters, Volume. 14, Issue 3, 031403(2016)
Stimulated Brillouin scattering threshold dependent on temporal characteristics in a kilowatt-peak-power, single-frequency nanosecond pulsed fiber amplifier
The stimulated Brillouin scattering (SBS) threshold affected by repetition rate and pulse duration in a single-frequency nanosecond pulsed fiber amplifier is studied. The experimental results demonstrate that the SBS threshold can be improved either by reducing the repetition rate or by narrowing the pulse duration; however, the average power may be limited in some cases. Otherwise, two evaluation methods for the SBS threshold in the fiber amplifier are compared and discussed, aiming to obtain a more accurate description for the SBS threshold in our single-frequency amplifier system.
High-power nanosecond pulsed laser sources with a single frequency have many important applications, such as material processing, remote sensing, laser radar, nonlinear frequency generation, and coherent beam combination[
In this Letter, the SBS threshold in a single-frequency nanosecond pulsed fiber amplifier that depends on the temporal characteristics is demonstrated experimentally. The fiber amplifier system is based on a master oscillator power amplifier (MOPA) structure with an intensity-modulated pulsed seed by an electro-optic modulator (EOM). Pulsed lasers with different pulse durations and repetition rates can be obtained by setting the parameters of a signal generator (SG). The SBS effect can be observed at different power levels under different pulse parameters. It is worth noting that the emergence of SBS can be either evaluated by the backward spectrum or by backward Stokes wave power. These two evaluation methods on the SBS threshold deduce different descriptions of the power handing limitation for the fiber amplifier system, so it is necessary to compare and analyze the two methods in detail.
The experimental setup of the all-fiber single-frequency pulsed fiber amplifier is shown in Fig.
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Figure 1.Experimental arrangement of the all-fiber single-frequency pulsed fiber amplifier.
Figure 2.Spectra of the (a) CW laser and (b) intensity-modulated pulsed laser over an F–P interferometer.
Since the first-order Stokes line centered at 0.06 nm red-shifted from the pump wave for the pump wavelength of 1064.4 nm is observed while the pulsed average laser power is being amplified to 70 W, the SBS threshold for a nanosecond laser being amplified in a 15/130 μm fiber should be investigated in detail. The two evaluation methods for the SBS threshold are defined as follows: (1) as soon as the Stokes line in the backward spectrum is observed, the corresponding amplified peak power is considered to be the SBS threshold power; and (2) as the backward Stokes average power increases to 2% of the forward average pump power, the peak pump power is thought to be the SBS threshold power. Here, we just take the Amp3 stage into consideration for the SBS effect, because the power of formal stages is lower than the SBS threshold. Since the total fiber length of Amp3 is 2.5 m, the backward Stokes wave generated by the pump pulse at the exit end of the fiber will get out from the other port after 12 ns (
Figure 3.Backward spectra under different average output powers with repetition rates of (a) 5, (b) 10, and (c) 15 MHz.
Figure 4.Backward Stokes average power versus average output pump power with repetition rates of 5, 10, and 15 MHz.
To analyze the effects of pulse duration on the SBS threshold, the repetition rate of the signal pulse is maintained at 10 MHz and the pulse duration is set to 4, 8, and 10 ns. The pulse widths of the obtained pulsed laser are 5.5, 9.2, and 11.1 ns. The SBS thresholds evaluated by the above two methods are depicted in Figs.
Figure 5.Backward spectra under different average output powers with pulse durations of (a) 4, (b) 8, and (c) 10 ns.
Figure 6.Backward Stokes average power versus average output pump power with repetition rates of 4, 8, and 10 ns.
Among all the above situations, the output pulse shapes and pulse widths during the amplifying processes remain stable and the signal-to-noise ratio of the forward output optical spectra are controlled to be higher than 40 dB. Considering the average power and peak power comprehensively, a repetition rate of 10 MHz and a pulse duration of 4 ns is the best choice. When the average output power is amplified to 70 W, the obtained peak power is 1.15 kW and the pulse width of the signal laser is 5.5 ns. The spectral linewidth of the amplified laser is measured to be
Figure 7.Typical pulse shapes of the amplified pulses with an average power of 70 W.
Figure 8.Forward optical spectrum of the amplified pulsed laser with an average power of 70 W.
In conclusion, we demonstrate a single-frequency nanosecond MOPA laser in an all-fiberized structure with kilowatt peak power. The SBS thresholds evaluated by two methods are discussed in detail when setting the pulsed laser at different repetition rates and pulse durations. The thresholds are highly related to the temporal characteristics regardless of whether we are considering the backward spectra or the backward Stokes wave power. Pulses with lower repetition rates and narrower pulse durations result in lower SBS thresholds. However, the average output power will be limited if the repetition rate is too low in a certain fiber system because the Stokes line will appear at a lower average power point and increase quickly in the backward spectrum compared with higher repetition rate pulses. So, in order to obtain a higher average power and peak power together when the pulse duration is less than 10 ns, we need to balance the increment of the peak power against the decrement of the average power for lower repetition rates before the Stokes line rises.
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Man Hu, Zhao Quan, Jianhua Wang, Kai Liu, Xiaolong Chen, Chun Zhao, Yunfeng Qi, Bing He, Jun Zhou, "Stimulated Brillouin scattering threshold dependent on temporal characteristics in a kilowatt-peak-power, single-frequency nanosecond pulsed fiber amplifier," Chin. Opt. Lett. 14, 031403 (2016)
Category: Lasers and Laser Optics
Received: Nov. 4, 2015
Accepted: Jan. 8, 2016
Published Online: Aug. 6, 2018
The Author Email: Yunfeng Qi (dreamer_7@mail.siom.ac.cn), Bing He (bryanho@siom.ac.cn), Jun Zhou (junzhousd@siom.ac.cn)