Acta Optica Sinica, Volume. 33, Issue 5, 531001(2013)
Prepared by Sol-Gel Method Magnesium Fluoride Anti-Reflective Films for Fluorophosphate Glass
[1] [1] S. E. Stokowski, W. E. Martin, S. M. Yarema. Optical and lasing properties of fluorophosphate glass [J]. J. Non-Cryst Solids, 1980, 40(1-3): 481~487
[2] [2] Gan Fuxi. Optical properties of fluoride glasses: a review [J]. J. Non-Cryst Solids, 1995, 184: 9~20
[3] [3] N. Rigout, J. L. Adam, J. Lucas. Chemical and physical compatibilities of fluoride and fluorophosphate glasses [J]. J. Non-Cryst Solids, 1995, 184: 319~323
[4] [4] G. A. Kumar, E. De la Rosa-Cruz, A. Martinez et al.. Influence of borate content on the radiative properties of Nd3+ ions in fluorophosphate glasses [J]. J. Phys. Chem. Solids, 2003, 64(1): 69~76
[7] [7] J. M. Ko, Y. Terada, H. J. Ko et al.. Epitaxial growth of NdF3Er3+ film on CaF2 (111) substrate by molecular beam epitaxy [J]. J. Cryst Growth, 1998, 192(1): 157~163
[8] [8] Li Chensong, Xu Tingxian. Preperation of the inorganic film [J]. Bulletin of the Chinese Ceramic Society, 2003, 22(2): 21~25, 56
[9] [9] D. B. John, B. Cédric, N. Lionel. Thermally induced porosity in CSD MgF2-based optical coatings: an easy method to tune the refractive index [J]. Chem. Mater., 2008, 20(17): 5550~5556
[10] [10] F. Shinobu, T. Munehiro, K. Toshio. Controlling factors for the conversion of trifluoroacetate sols into thin metal fluoride coatings [J]. J. Sol-Gel Sci. & Technol., 2000, 19(1-3): 311~314
[11] [11] F. Shinobu, K. Toshio, T. Munehiro. Preparation and characterization of MgF2 thin film by a trifluoroacetic acid method [J]. Thin Solid Films, 1997, 304(1): 252~255
[12] [12] M. Tsuyoshi, I. Hitoshi, M. Izumi et al.. Investigations of MgF2 optical thin films prepared from autoclaved sol [J]. J. Sol-Gel Sci. & Technol., 2004, 32(1-3): 161~165
[14] [14] F. Y. Wang, Y. F. Zhu, Y. Jiang et al.. Fabrication and properties of MgF2 composite film modified with carbon nanotubes [J]. J. Sol-Gel Sci. & Technol., 2011, 58(3): 587~593
[15] [15] E. Kemnitz, U. Groβ, S. Rüdiger et al.. Amorphous metal fluorides with extraordinary high surface areas [J]. Angew Chem. Int. Ed., 2003, 42(35): 4251~4254
[16] [16] H. Krüger, E. Kemnitz, A. Hertwig et al.. Transparent MgF2-films by sol-gel coating: synthesis and optical properties [J]. Thin Solid Films, 2008, 516(12): 4175~4177
[17] [17] H. Krüger, E. Kemnitz, A. Hertwig et al.. Moderate temperature sol-gel deposition of magnesium fluoride films for optical UV-applications: a study on homogeneity using spectroscopic ellipsometry [J]. Phys. Stat. Sol. (a), 2008, 205(4): 821~824
[18] [18] S. Wuttke, A. Lehmann, G. Scholz. Investigation of the fluorolysis of magnesium methoxide [J]. Dalton Trans., 2009, (24): 4729~4734
[19] [19] H. Krüger, A. Hertwig, U. Beck et al.. Low temperature sol-gel metal oxide and fluoride layer stacks for optical applications [J]. Thin Solid Films, 2010, 518(21): 6080~6086
[20] [20] J. Noack, F. Emmerling, H. Kirmse et al.. Sols of nanosized magnesium fluoride: formation and stabilisation of nanoparticles [J]. J. Mater. Chem., 2011, 21(38): 15015~15021
[21] [21] J. Noack, K. Scheurell, E. Kemnitz et al.. MgF2 antireflective coatings by sol-gel processing: film preparation and thermal densification [J]. J. Mater. Chem., 2012, 22(35): 18535~18541
[22] [22] P. A. Sermon, R. Badheka. MgF2 xerogels [J]. J. Sol-Gel Sci. & Technol., 2004, 32(1-3): 149~153
[23] [23] A. A. Rywak, J. M. Burlitch. Sol-gel synthesis of nanocrystalline magnesium fluoride: its use in the preparation of MgF2 films and MgF2-SiO2 composites [J]. Chem. Mater., 1996, 8(1): 60~67
[24] [24] Zheng Zhi, Zu Xiaotao, Jiang Xiaodong et al.. Effect of HF etching on the surface quality and laser-induced damage of fused silica [J]. Opt. & Laser Technol., 2012, 44(4): 1039~1042
[25] [25] J. Neauport, P. Cormont, L. Lamaignère et al.. Concerning the impact of polishing induced contamination of fused silica optics on the laser-induced damage density at 351 nm [J]. Opt. Commun., 2008, 281(14): 3802~3805
[26] [26] D. S. Hobbs, B. D. MacLeod. High laser damage threshold surface relief micro-structures for anti-reflection applications [C]. SPIE, 2007, 6720(68):
[27] [27] Xu Yao, Zhang Lei, Wu Dong et al.. Abrasion-resistant solgel antireflective films with a high laser-induced damage threshold forinertial confinement fusion [J]. J. Opt. Soc. Am. B, 2005, 22(9): 1899~1910
[28] [28] K. Yoshida, H. Yoshida, Y. Kato et al.. Highly damage resistant, broadband, hard antireflection coating for high power lasers in the ultraviolet to near-infrared wavelength regions [J]. Appl. Phys. Lett., 1985, 47(9): 911~913
[29] [29] K. Yoshida, T. Yabe, H. Yoshida et al.. Mechanism of damage information in antireflection coatings [J]. J. Appl. Phys., 1986, 60(4): 1545~1546
[30] [30] Gao Xiang, Feng Guoying, Han Jinghua et al.. Investigation of laser-induced damage by nanoabsorbers at the surface of fused silica [J]. Appl. Opt., 2012, 51(13): 2463~2468
[31] [31] N. Kaiser. Resistance of coated optics to UV laser irradiation [C]. SPIE, 1994, 2253: 722~730
[32] [32] T. W. Walker, A. H. Guenther, P. E. Nielsen. Pulsed laser-induced damage to thin-film optical coatings-part I: experimental [J]. IEEE J. Quantum Elect., 1981, 17(10): 2041~2052
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Hu Wenjie, Jia Hongbao, Sun Jinghua, Ding Ruimin, Wu Dong, Xu Yao. Prepared by Sol-Gel Method Magnesium Fluoride Anti-Reflective Films for Fluorophosphate Glass[J]. Acta Optica Sinica, 2013, 33(5): 531001
Category: Thin Films
Received: Jan. 5, 2013
Accepted: --
Published Online: May. 7, 2013
The Author Email: Wenjie Hu (huwenjie@sxicc.ac.cn)