• Chinese Journal of Lasers
  • Vol. 43, Issue 4, 402004 (2016)
Wang Wei1、*, Tang Xiahui1, Qin Yingxiong1, Xiao Longsheng2, Wu Chao1, Wang Zhen1, and Wan Wen1
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
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    DOI: 10.3788/cjl201643.0402004 Cite this Article Set citation alerts
    Wang Wei, Tang Xiahui, Qin Yingxiong, Xiao Longsheng, Wu Chao, Wang Zhen, Wan Wen. Influence of Resonator Mirror Surfaces on Output Mode of Radio Frequency Slab CO2 Lasers[J]. Chinese Journal of Lasers, 2016, 43(4): 402004 Copy Citation Text show less
    References

    [1] Mahajan V N. Aberration theory made simple[C]. Bellingham: SPIE Press, 1991.

    [2] Klein C A. Optical distortion coefficients of high-power laser windows[J]. Optical Engineering, 1990, 29(4): 343-350.

    [3] Hauck R, Hodgson N, Weber H. Misalignment sensitivity of unstable resonators with spherical mirrors[J]. Journal of Modern Optics, 1988, 35(2): 165-176.

    [4] Liu C, Riesbeck T, Wang X, et al.. Influence of spherical aberrations on the performance of dynamically stable resonators[J]. Optics Communications, 2008, 281(20): 5222-5228.

    [5] Liu C. A birefringence-compensated two-rod Nd∶YAG laser operating in TEM00 mode with a CW 61 W output power[J]. Laser Physics, 2009, 19(12): 2155-2158.

    [6] Lumer Y, Moshe I, Jackel S, et al.. Use of phase corrector plates to increase the power of radially polarized oscillators[J]. Journal of the Optical Society of America B, 2010, 27(7): 1337-1342.

    [7] Liu Jianfeng, Wang Huijun, Sun Dewei, et al.. On-orbit adjustment and compensation for large aperture optical system[J]. Acta Optica Sinica, 2014, 34(3): 0322005.

    [8] Xue Qingsheng. Optical system design of large relative-aperture and wide field of view spaceborne imaging spectrometer[J]. Chinese J Lasers, 2014, 41(3): 0316003.

    [9] Zhou Liansheng, Yu Xinfeng, Wu Zhihui, et al.. Analysis of influence factors of thermal aberrations based on the small lens system[J]. Laser & Optoelectronics Progress, 2014, 51(9): 092204.

    [10] Gilbert M, Thro P Y. Near-diffraction-limited high power cw Nd∶YAG laser using the spherical aberration of laser rods[C]. Conference on Lasers and Electro-Optics Europe, Munich, Germany, 2005.

    [11] Siegman A E. Analysis of laser beam quality degradation caused by quartic phase aberrations[J]. Applied Optics, 1993, 32(30): 5893- 5901.

    [12] Hodgson N, Weber H. Influence of spherical aberration of the active medium on the performance of Nd∶YAG lasers[J]. IEEE Journal of Quantum Electronics, 1993, 29(9): 2497-2507.

    [13] Buske I, Wittrock U. Diffraction analysis of aberrated laser resonators[J]. Applied Physics B, 2006, 83(2): 229-233.

    [14] Zhao Z, Pan S, Xiang Z, et al.. Influences of spherical aberration on resonator′s stable zones and fundamental mode output power scaling of solid state laser oscillators[J]. Optics Express, 2012, 20(10): 10605-10616.

    [15] Jackson P E, Baker H J, Hall D R. CO2 large-area discharge laser using an unstable-waveguide hybrid resonator[J]. Applied Physics Letters, 1989, 54(20): 1950-1952.

    [16] Colley A D, Baker H J, Hall D R. Planar waveguide, 1 kW cw, carbon dioxide laser excited by a single transverse rf discharge[J]. Applied Physics Letters, 1992, 61(2): 136-138.

    [17] Lapucci A, Labate A, Rossetti F, et al.. Hybrid stable-unstable resonators for diffusion-cooled CO2 slab lasers[J]. Applied Optics, 1996, 35(18): 3185-3192.

    [18] Lapucci A, Ciofini M. Numerical analysis of non-confocal configurations of a hybrid stable-unstable resonator[J]. Optics Communications, 2011, 284(4): 999-1003.

    [19] Nowack R R, Opower H, Schaefer U, et al.. High-power CO2 waveguide laser of the 1-kW category[C]. SPIE, 1990, 1276: 18-28.

    [20] Xin Jianguo, Zhang Wang. RF excited diffusively cooled kilowatts carbon monoxide slab waveguide laser[J]. Acta Optica Sinica, 2000, 20(5): 714-716.

    [21] Li Zhiming, Xin Jianguo. Power output characteristic of RF excited all metal slab waveguide CO2 laser[J]. Infrared and Laser Engineering, 2008, 37(2): 230-232.

    [22] Du K, Wu N, Xu J, et al.. Partially end-pumped Nd∶YAG slab laser with a hybrid resonator[J]. Optics Letters, 1998, 23(5): 370-372.

    [23] Ciofini M, Favilla E, Lapucci A, et al.. Propagation parameters of the beam extracted from a diode pumped Nd∶YAG ceramic slab laser with a hybrid stable-unstable resonator[J]. Optics & Laser Technology, 2007, 39(7): 1380-1388.

    [24] Lapucci A, Ciofini M, Vannoni M, et al.. High efficiency, diode pumped Nd∶YAG ceramics slab laser with 230 W continuous-wave output power[J]. Applied Optics, 2012, 51(18): 4224-4231.

    [25] International Standardization Organization. 11146-1 Lasers and laser-related equipment - test methods for laser beam widths, divergence angles and beam propagation ratios - Part 1: Stigmatic and simple astigmatic beams[S]. 2005.

    [26] Gao Yungui, Li Xiangyang, Qin Liyong, et al.. Far-field circular symmetry beam of RF slab CO2 laser[J]. Chinese J Lasers, 2002, 29(1): 95-96.

    [27] Xiao Longsheng, Tang Xiahui, Qin Yingxiong, et al.. Shaping characteristics of output beam of 2 kW RF slab CO2 laser[J]. Chinese J Lasers, 2014, 41(4): 0402008.

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    [3] Wang Zhen, Peng Hao, Wang Wei, Wu Chao, Tang Xiahui. Discharge Uniformity and Impedance Matching of Multi-Group Electrodes for 3 kW Radio Frequency Slab CO2 Lasers[J]. Acta Optica Sinica, 2017, 37(3): 314002

    Wang Wei, Tang Xiahui, Qin Yingxiong, Xiao Longsheng, Wu Chao, Wang Zhen, Wan Wen. Influence of Resonator Mirror Surfaces on Output Mode of Radio Frequency Slab CO2 Lasers[J]. Chinese Journal of Lasers, 2016, 43(4): 402004
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