Optical parametric oscillators (OPOs)[
Chinese Optics Letters, Volume. 20, Issue 9, 091401(2022)
Investigations on beam quality improvement of an NCPM-KTA-based high energy optical parametric oscillator using an unstable resonator with a Gaussian reflectivity mirror [Invited]
Beam quality improvements by a large margin for signal and idler beams of a high energy 100 Hz
1. Introduction
Optical parametric oscillators (OPOs)[
Except for pulse energy, beam quality is another concern for distance-related applications. In fact, simple plane-parallel cavities are widely used for high energy nanosecond pulsed OPOs[
To improve the beam quality of high energy OPO systems, there are mainly two methods, one of which is the non-planar ring cavity configuration, including the rotated image singly resonant twisted rectangle (RISTRA)[
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Another well-established method for brightness improvement is to employ unstable resonators, which are simple in structure[
In this contribution, we compared the performances of two OPO cavities, i.e., stable plane-parallel resonator and unstable resonator. A total output energy of 170 mJ was obtained in the plane-parallel cavity, where the factors for the signal were and , and and for the idler. Based on theoretical calculations and experimental results, the parameters of the resonator were optimized and improved, and the unstable cavity based on a GRM was designed, which greatly improved the beam quality. A total output energy of 101 mJ was obtained, with the factors of and for the signal and and for the idler. Compared with the plane-parallel cavity, the brightness of the signal and idler was improved by more than eight times and three times, respectively. The experimental results show that the unstable cavity with GRM is more suitable for high brightness OPOs based on NCPM-KTA.
2. Numerical Simulation
The parametric interaction of OPOs can be described by the coupled field equations[
The pump power follows a Gaussian time distribution given by
Also, the transverse distribution of the intensity is assumed to be Gaussian, and it is given by
Using and assuming that the beam waist is located at the input mirror, one can obtain the temporal and spatial profile of the pump pulse, given by
The initial intensity of the signal wave is the vacuum fluctuations, given by Ref. [41],
The evolution of three waves can be simulated as follows, the process of which is similar to Ref. [42]. The pump pulse is injected on the crystal surface and experiences the energy conversion due to the nonlinear frequency conversion inside the nonlinear crystal. Then, the reflected waves by the output mirror become the start values of the next cavity round trip. Also, this loop will end after the pump pulse leaves the crystal.
Note that a Gaussian mirror is used in the unstable cavity OPO, whose transmission exhibits a Gaussian profile,
The calculation results are the spatial and temporal distribution of the electrical field of three waves. Subsequently, one can get the output energy of three waves using the integration, given by
The conversion efficiency of the OPO can also be calculated from the relation
Conversion efficiency is a key factor to decide the optimum OPO, and it has attracted much interest to improve the conversion efficiency recently[
Figure 1.(a) Conversion efficiency versus crystal length at 50% transmittance of the OC. (b) Conversion efficiency versus transmittance of the OC at the crystal length of 33 mm.
The efficiency of the plane-parallel cavity is approximately twice that of the unstable cavity, mainly due to the fact that the output coupler (OC) of the plane-parallel cavity is high reflection (HR) coated at 1.064 µm, whereas the OC of the unstable cavity is not. The influence of the mirror transmittance on the conversion efficiency was also analyzed, as shown in Fig. 1(b). Based on our simulations, the optimum value of the transmittance was predicted to be around 45% for our experiment. The numerical model is beneficial to optimize OPO parameters.
3. Experimental Setup
The experimental setup of the high energy KTA OPO system is depicted in Fig. 2. The system was composed of 1064 nm (Nd:YAG) main oscillator power amplifier (MOPA) and KTA-OPO. The side-pumped Nd:YAG MOPA system contained an oscillator and two-stage amplifiers, which were used as the pump source of the KTA-OPO.
Figure 2.Schematic diagram of the experimental setup of the KTA-OPO system. HR, high reflection; 90°QR, 90° quartz rotator; BP, beam polarizer; GRM1, Gaussian reflectivity mirror for 1.06 µm; ISO, isolator; M1, mirror 1; GRM2, Gaussian reflectivity mirror for 1.5 µm; M2, 45° beam splitter.
In the Nd:YAG MOPA system, the master oscillator was designed to operate at a PRF of 100 Hz -switched by an electro-optic modulator (EOM). To compensate for the thermally induced birefringence, the double-rods-cascading structure was adopted, and a 90° quartz rotator was placed between the two rods. The oscillator consisted of two 0.6% (atomic fraction) Nd:YAG rods with a diameter of 5 mm and a length of 75 mm, which were placed in a resonator with a length of 35 cm. GRM1 was the OC with 30% reflectivity at 1.064 µm, which could improve the beam quality of the oscillator. The peak pump power of the single module used in the oscillator, first-stage amplifier, and second-stage amplifier was 3 kW, 6 kW, and 12 kW, respectively. Isolators were placed between the amplifier stages to prevent self-excited oscillation and amplified spontaneous emission between the amplifiers, which could also protect the optical components from damage. The Nd:YAG rods of the first and second-stage amplifiers were 0.6% doped with sizes of and , respectively.
According to the simulation results, an -cut KTA crystal was used as the nonlinear crystal with a size of . The Nd:YAG MOPA system was used as the pump source of the OPO, which was injected into the OPO cavity through the isolator and the collimation system. To make a comparison, plane-parallel and unstable resonators were designed under the same experimental conditions. The input mirror of the OPO (M1) was coated with high transparency (HT) for pump light and HR for signal and idler light. Both the OCs of stable and unstable cavities were coated with a reflectivity of 50% for the signal and HT for the idler. The OC of the plane-parallel cavity was coated with HR for the 1.064 µm wavelength, while GRM2 of the unstable cavity was not. As explained in Ref. [29], for the unstable cavity, the cavity losses were directly related to the magnification factor , which should be a good trade-off between the round-trip losses and the spatial mode selection. Through experimental optimization, GRM2 and the rearview mirror were finally selected to form a non-confocal unstable cavity with . The M1 was a concave mirror with a radius of 2000 mm, and GRM2 was a Gaussian reflectivity convex mirror with a radius of 1300 mm. In the stable resonator, cavity mirrors were both flat mirrors.
4. Results and Discussion
4.1. The 1064 nm pump source
The output energy of the Nd:YAG oscillator, first-stage amplifier, and second-stage amplifier is shown in Fig. 3. The maximum output pulse energy of the pump source was about 480 mJ. The typical pulse shape at the maximum output energy of the Nd:YAG MOPA system is shown in Fig. 3(a), and the pulse duration of the final output laser was about 18 ns. As shown in Fig. 3(b), and for 480 mJ output energy were 4.9 and 3.5, respectively. The inset in Fig. 3(b) shows the corresponding transverse beam profile. For an introduction to the 1064 nm pump source, refer to Ref. [16] for specific results.
Figure 3.(a) Output energy change with the pump current. Inset shows the temporal pulse profile at maximum output power. (b) Beam quality of the energy at 480 mJ. Inset shows the beam profile.
4.2. The KTA-OPO
A beam expander system was applied to match the pump beam diameter with the crystal aperture. The diameter of the pump laser injected into the KTA-OPO was 8 mm. The crystal was wrapped with indium foil and mounted in a crystal holder. To compare the output characteristics of unstable and stable cavities, both were demonstrated with the same cavity length of 90 mm. The corresponding pulse energies of the OPO versus the pump energy are shown in Fig. 4(a). When the maximum incident pump energy was 480 mJ, the total output energy of the unstable resonator with GRM was 101 mJ, of which the 1.53 µm signal light was 75 mJ, and the 3.47 µm idler light was 26 mJ. The highest total output energy of the plane-parallel cavity was 170 mJ with the pump energy of 480 mJ. The discrepancy of nearly 70 mJ resulted from the different coating characteristics of the OCs. For the plane-parallel cavity, the OC was HR coated at 1.064 µm, enabling double-pass pumping for higher output. While limited by the coating technology, the OC (GRM2) of the unstable cavity was without HR coating for 1.064 µm, and single-pass pumping resulted in lower output energy. To date, this is the highest output level of the OPO with an unstable cavity at 100 Hz PRF. Moreover, the dependence of the output energies on the cavity length is shown in Fig. 4(b) under the stable and unstable operation. As the length of the cavity increased, the output energy of both unstable and stable cavities decreases significantly.
Figure 4.OPO output pulse energies (sum of signal and idler) for unstable and stable resonators. (a) Output energies versus the incident pump energy at the cavity length of 90 mm. (b) Output energies under different cavity lengths at the pump energy of 480 mJ.
To verify that the unstable cavity could improve the beam quality, we obtained the beam profile from a near-infrared CCD (SP620U-MIR, Ophir) and MIR (WinCamD-IR-BB, DataRay) camera. Figure 5 shows the measured beam profiles of the signal and idler, and it was found that both the signal and idler of an unstable cavity had better spatial intensity distribution than those from a stable cavity. At the same pump energy of 480 mJ, the of the signal and idler in the stable cavity and unstable cavity with GRM were obtained by fitting the beam propagation equation. Figures 5(a) and 5(b) show the beam quality of stable cavity OPO, the factors of the signal were and , and those of the idler were and . The beam quality of the unstable cavity is shown in Figs. 5(c) and 5(d), the beam quality factors of the signal were about and , and the beam quality factors of the idler were about and . The above results are summarized in Table 1.
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Figure 5.Beam quality of the signal and idler at the pump energy of 480 mJ. Inset shows the beam profile. (a) Signal of the OPO based on the plane-parallel cavity; (b) idler of the OPO based on the plane-parallel cavity; (c) signal of the OPO based on the unstable cavity with GRM; (d) idler of the OPO based on the unstable cavity with GRM.
A figure of merit that could be used to compare these two works is the brightness. The general definition of a pulsed laser source brightness is given by
Although the beam quality has been greatly improved by using a non-confocal unstable cavity with GRM, the results still need to be further improved. As reported in Ref. [30], the confocal unstable resonator has been shown to be useful for generating beams close to the diffraction limit in the OPO. To realize a confocal unstable resonator with the GRM in hand, the cavity length was increased to satisfy the confocal condition, which resulted in a significant decrease in the OPO efficiency. Building a compact confocal resonator, GRM with a short radius of curvature was required. However, it was difficult for GRMs with short radii of curvature to control damage in a high energy cavity. In future experiments, we will focus on how to use the confocal unstable cavity OPO to obtain high energy laser output with ideal beam quality. We will also improve the beam quality of the 1064 nm pump source to increase the brightness of the OPO’s output lasers.
The corresponding output spectral characteristics were measured at a maximum pulse energy of 101 mJ for the unstable cavity with GRM. As shown in Fig. 6, the bandwidth (FWHM) of the signal spectrum was approximately 0.25 nm with a central wavelength of 1535 nm. Based on the phase matching conditions, the idler laser wavelength can be calculated to be 3467 nm.
Figure 6.Spectrum of the signal light.
In addition, an indium gallium arsenide detector, an MIR detector (MIP-10-100M-F-M4, Vigo), and an oscilloscope (Wavesurfer 3034, LeCroy) were used to observe and record the pulse shape of the OPO. The results are shown in Figs. 7(a) and 7(b). At the maximum output energy, the pulse widths of the signal and idler were 16.2 ns and 15.4 ns, respectively. Figure 7(c) shows the simulation of the temporal profile of the depleted pump, signal, and idler pulses. It indicated that the signal and idler pulses build up synchronously when the pump pulse starts the conversion, and the pulse widths were estimated to be 15.6 ns and 15.8 ns for the signal and idler pulses, respectively. In general, these characteristics were basically consistent with the experimental results.
Figure 7.Typical pulse shapes of OPO based on the unstable cavity with GRM at the output energy of 101 mJ. (a) Temporal profile of the signal in the experiment; (b) temporal profile of the idler in the experiment; (c) the simulation of the temporal profile.
5. Conclusion
In summary, the brightness can be greatly improved by using a GRM and an unstable resonator as compared to the standard plane-parallel resonator. A high beam quality, high energy, unstable cavity KTA-OPO with a PRF of 100 Hz was achieved. The total output energy was about 101 mJ. The beam quality factors of the signal beam at the maximum output energy were about and . The corresponding results of the idler beam were about and . The dual-wavelength high energy OPO system will be a reliable and powerful tool for spectral measurement, remote sensing, and military aspects. Future experiments are devoted to optimizing the magnification of the unstable cavity OPO to optimize the efficiency and divergence of the signal and idler beams while maintaining good beam quality.
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Jun Meng, Chen Li, Zhenhua Cong, Zhigang Zhao, Shang Wang, Gaoyou Liu, Zhaojun Liu, "Investigations on beam quality improvement of an NCPM-KTA-based high energy optical parametric oscillator using an unstable resonator with a Gaussian reflectivity mirror [Invited]," Chin. Opt. Lett. 20, 091401 (2022)
Category: Lasers, Optical Amplifiers, and Laser Optics
Received: Apr. 4, 2022
Accepted: May. 13, 2022
Published Online: Jun. 16, 2022
The Author Email: Zhaojun Liu (zhaojunliu@sdu.edu.cn)