Chinese Journal of Lasers, Volume. 42, Issue 1, 103001(2015)
Investigation of Femtosecond-Laser Induced Periodic Surface Structure on Molybdenum
[2] [2] Xia Bo, Jiang Lan, Wang Sumei, et al.. Femtosecond laser drilling of micro-holes [J]. Chinese J Lasers, 2013, 40(2): 0201002.
[3] [3] Yang Huan, Huang Shan, Duan Jun, et al.. Contrastive study on laser ablation of single-crystal silicon by 1030 nm femtosecond laser and 355 nm nanosecond laser[J]. Chinese J Lasers, 2013, 40(1): 0103003.
[4] [4] Liu Kui, Feng Guoying, Deng Guoliang, et al.. Difference in microstructures induced by femtosecond laser scanning on silicon surface at different temperatures[J]. Chinese J Lasers, 2012, 39(8): 0803003.
[5] [5] J Reif, F Costache, M Henyk, et al.. Ripples revisited: non-classical morphology at the bottom of femtosecond laser ablation craters in transparent dielectrics[J]. Appl Surf Sci, 2002, 197-198: 891-895.
[6] [6] G Daminelli, J Krüger, W Kautek, et al.. Femtosecond laser interaction with silicon under water confinement[J]. Thin Solid Films, 2004, 467(1-2): 334-341.
[7] [7] Q Z Zhao, S Malzer, L J Wang. Formation of subwavelength periodic structures on tungsten induced by ultrashort laser pulses[J]. Opt Lett, 2007, 32(13): 1932-1934.
[8] [8] V R Bhardwaj, E Simova, P P Rajeev, et al.. Optically produced arrays of planar nanostructures inside fused silica[J]. Phys Rev Lett, 2006, 96(5): 057404.
[9] [9] Y Yang, J Yang, C Liang, et al.. Sub-wavelength surface structuring of NiTi alloy by femtosecond laser pulses[J]. Applied Physics A, 2008, 92(3): 635-642.
[10] [10] J Wang, C Guo. Ultrafast dynamics of femtosecond laser-induced periodic surface pattern formation on metals[J]. Applied Physics Letters, 2005, 87(25): 251914.
[11] [11] R Younkin, J Carey, E Mazur, et al.. Infrared absorption by conical silicon microstructures made in a variety of background gases using femtosecond-laser pulses[J]. Journal of Applied Physics, 2003, 93(5): 2626-2629.
[12] [12] A Y Vorobyev, V S Makin, C Guo. Brighter light sources from black metal: significant increase in emission efficiency of incandescent light sources[J]. Phys Rev Lett, 2009, 102(23): 234301.
[13] [13] T Baldacchini, J E Carey, M Zhou, et al.. Superhydrophobic surfaces prepared by microstructuring of silicon using a femtosecond laser[J]. Langmuir, 2006, 22(11): 4917-4919.
[14] [14] M Huang, F Zhao, Y Cheng, et al.. Mechanisms of ultrafast laser-induced deep-subwavelength gratings on graphite and diamond[J]. Phys Rev B, 2009, 79(12): 125436.
[15] [15] J E Sipe, J F Young, J S Preston, et al.. Laser-induced periodic surface structure, I. Theory[J]. Phys Rev B, 1983, 27: 1141–1154.
[16] [16] M Huang, F Zhao, Y Cheng, et al.. Origin of laser-induced near-subwavelength ripples: interference between surface plasmons and incident laser[J]. ACS Nano, 2009, 3(12): 4062-4070.
[17] [17] G Miyaji, K Miyazaki, K Zhang, et al.. Mechanism of femtosecond-laser-induced periodic nanostructure formation on crystalline silicon surface immersed in water[J]. Opt Express, 2012, 20(14): 14848-14856.
[18] [18] Luo Zhenzhong. Application and development of molybdenum[J]. China Molybdenum Industry, 2003, 27(2): 7-10.
[19] [19] Wu Zhou, Sun Yuanjun. Magic metal——molybdenum[J]. China Molybdenum Industry, 2010, 34(2): 1-6.
[20] [20] A K Sharma, J Smedley, T Tsang, et al.. Formation of subwavelength grating on molybdenum mirrors using a femtosecond Ti:sapphire laser system operating at 10 Hz[J]. Review of Scientific Instruments, 2011, 82(3): 033113.
[21] [21] A M Bonch-Bruevich, M N Libenson, V S Makin, et al.. Surface electromagnetic waves in optics[J]. Opt Eng, 1992, 31(4): 718-730.
[22] [22] E D Palik. Handbook of Optical Constants of Solids[M]. New York: Academic Press, 1998.
[23] [23] K F Palmer, D Williams. Optical properties of water in the near infrared[J]. J Opt Soc Am, 1974, 64(8): 1107-1110.
[24] [24] Z Lin, L V Zhigilei, V Celli. Electron-phonon coupling and electron heat capacity of metals under conditions of strong electronphonon nonequilibrium[J]. Physical Review B, 2008, 77(7): 075133.
[25] [25] L Xue, J Yang, Y Yang, et al.. Creation of periodic subwavelength ripples on tungsten surface by ultra-short laser pulses[J]. Applied Physics A, 2012, 109(2): 357-365.
[26] [26] Q Gan, Y J Ding, F J Bartoli.“Rainbow”trapping and releasing at telecommunication wavelengths[J]. Phys Rev Lett, 2009, 102(5): 056801.
[27] [27] T Lopez-Rios, D Mendoza, F J Garciia-Vidal, et al.. Surface shape resonances in lamellar metallic gratings[J]. Phys Rev Lett, 1998, 81(3): 665-668.
[28] [28] J A Porto, F J Garc ía-Vidal, J B Pendry. Transmission resonances on metallic gratings with very narrow slits[J]. Phys Rev Lett, 1999, 83(14): 2845–2848.
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Wang Haozhu, Yang Fenghe, Yang Fan, Nie Meitong, Yang Jianjun. Investigation of Femtosecond-Laser Induced Periodic Surface Structure on Molybdenum[J]. Chinese Journal of Lasers, 2015, 42(1): 103001
Category: laser manufacturing
Received: Jul. 10, 2014
Accepted: --
Published Online: Dec. 26, 2014
The Author Email: Haozhu Wang (wanghaozhu2008123@163.com)