Chinese Journal of Lasers, Volume. 41, Issue 10, 1007001(2014)
Design of Phase-Shifted Rugate Thin Film Spatial Filter
[1] [1] J T Hunt, J A Glaze, W W Simmons, et al.. Suppression of self-focusing through low-pass spatial filtering and relay imaging[J]. Appl Opt, 1978, 17(13): 2053-2057.
[2] [2] B M V Wonterghem, J R Murray, J H Campbell, et al.. Performance of a prototype for a large-aperture multipass Ndglass laser for inertial confinement fusion[J]. Appl Opt, 1997, 21(20): 4932-4953.
[3] [3] A K Potemkin, T V Barmashova, A V Kirsanov, et al.. Spatial filters for high-peak-power multistage laser amplifiers[J]. Appl Opt, 2007, 46(20): 4423-4430.
[7] [7] Liu Hongjie, Jing Feng, Li Qiang, et al.. The effect of spatial filter pinhole on output beams qualityin high power laser[J]. Journal of Yunnan University, 2005, 27(5A): 184-189.
[8] [8] Yanqi Gao, Baoqiang Zhu, Daizhong Liu, et al.. Characteristics of beam alignment in high power four-pass laser amplifier[J]. Appl Opt, 2009, 48(8): 1591-1597.
[9] [9] Yanqi Gao, Baoqiang Zhu, Daizhong Liu, et al.. Influences of the alignment and misalignment spatial filters on the beam quality in high power laser systems[J]. J Opt, 2010, 12(9): 095704.
[10] [10] Thomas D Rahmlow. Rugate Filter Having Suppressed Harmonics[P]. United States Patent: 5523882, [1996-6-4].
[11] [11] T D Rahmlow, A Turner. Broadband Rugate Filter: United States Patent, 5475531[P]. 1995-12-12.
[12] [12] W J Gunning. Rugate Filter Incorporating Parallel and Series Addition: United States Patent, 4952025[P]. 1990-8-28.
[13] [13] N P Murarka, K J Kogler, C S Bartholomew, et al.. Rugate Optical Filter Systems[P]. United States Patent: 4837044, [1989-6-6].
[14] [14] A C V Popta, M M Hawkeye, J C Sit, et al.. Gradient-index narrow-bandpass filter fabricated with glancing-angle deposition[J]. Opt Lett, 2004, 29(21): 2545-2547.
[15] [15] K Robbie, G Beydaghyan, T Brown, et al.. Ultrahigh vacuum glancing angle deposition system for thin films with controlled three-dimensional nanoscale structure[J]. Review of Scientific Instruments, 2004, 75(4): 1089-1097.
[16] [16] R Leitel, O Stenzel, S Wilbrandt, et al.. Fabrication and characterization of rugatestructures composed of SiO2 and Nb2O5[J]. Optics and Precision Engineering, 2005, 13(4): 505-511.
[17] [17] T K L Wong, L Brzozowski, E H Sargent. Analysis of non-quarter-wave grating by a modified Fourier-transform method[J]. Appl Opt, 2002, 41(32): 6763-6767.
[18] [18] F A Ríos, F V Villa, J A G Armenta. Dichroic Rugate filters[J]. Appl Opt, 2006, 45(3): 495-500.
[19] [19] K Robbie, G Beydaghyan, T Brown, et al.. Ultrahigh vacuum glancing angle deposition system for thin films with controlled three-dimensional nanoscale structure[J]. Review of Scientific Instruments, 2004, 75(4): 1089-1097.
[20] [20] Zheng Guangwei. Study on Non-Focusing Low-Pass Spatial Filtering Technology for High-Power Laser Beam[D]. Changsha: National University of Defense Technology, 2011. 144-147.
[21] [21] M G Moharam, T K Gaylord. Chain-matrix analysis of arbitrary-thickness dielectric reflection gratings[J]. J Opt Soc Am, 1982, 72(2): 187-190.
Get Citation
Copy Citation Text
Zhang Ying, Yi Kui, Qi Hongji, Shao Jianda. Design of Phase-Shifted Rugate Thin Film Spatial Filter[J]. Chinese Journal of Lasers, 2014, 41(10): 1007001
Category: materials and thin films
Received: Mar. 13, 2014
Accepted: --
Published Online: Aug. 26, 2014
The Author Email: Zhang Ying (zhangying0127@163.com)