Opto-Electronic Engineering, Volume. 44, Issue 9, 851(2017)
Research progress of ultrafast laser industrial applications based on filamentation
[2] [2] Dausinger S, Hügel H, Konov V I. Micromachining with ultra-short laser pulses: From basic understanding to technical ap-plications[J]. Proceedings of SPIE, 2003, 5147: 106–115.
[3] [3] Gattass R R, Mazur E. Femtosecond laser micromachining in transparent materials[J]. Nature Photonics, 2008, 2(4): 219–225.
[4] [4] Cheng g, Rudenko A, D’Amico C, et al. Embedded nanogratings in bulk fused silica under non-diffractive Bessel ultrafast laser irradiation[J]. Applied Physics Letters, 2017, 110(26): 261901.
[5] [5] Bhuyan M K, Velpula P K, Colombier J P, et al. Single-shot high aspect ratio bulk nanostructuring of fused silica using chirp-controlled ultrafast laser Bessel beams[J]. Applied Physics Letters, 2014, 104(2): 021107.
[6] [6] Butkus S, Paipulas D, Sirutkaitis R, et al. Rapid cutting and drilling of transparent materials via femtosecond laser fila-mentation[J]. Journal of Laser Micro/Nano Engineering, 2014, 9(3): 213–220.
[7] [7] Sudrie L, Franco M, Prade B, et al. Study of damage in fused silica induced by ultra-short IR laser pulses[J]. Optics Com-munications, 2001, 191(3–6): 333–339.
[8] [8] Tan Dezhi, Sharafudeen K N, Yue Yuanzheng, et al. Femto-second laser induced phenomena in transparent solid mate-rials: Fundamentals and applications[J]. Progress in Materials Science, 2016, 76: 154–228.
[9] [9] De Aldana J R V, Moreno P, Roso L. Ultrafast lasers: A new frontier for optical materials processing[J]. Optical Materials, 2012, 34(3): 572–578.
[10] [10] He Fei, Liao Yang, Cheng Ya. Fabrication and integration of three-dimensional micro/nano-structures inside dielectric ma-terials using femtosecond laser direct writing[J]. Progress in Physics, 2012, 32(2): 98–113.
[11] [11] Li Yan, Jiang Hongbing, Yang Hong, et al. Three-dimensional microfabrication in transparent materials with femtosecond laser pulses[J]. Chinese Journal of Quantum Electronics, 2004, 21(2): 188–193.
[12] [12] Xia Bo, Jiang Lan, Wang Sumei, et al. Femtosecond laser drilling of micro-holes[J]. Chinese Journal of Lasers, 2013, 40(2): 0201001.
[13] [13] Li Helong, Chu Wei, Xu Huailiang, et al. Simultaneous identi-fication of multi-combustion-intermediates of alkanol-air flames by femtosecond filament excitation for combustion sensing[J]. Scientific Reports, 2016, 6: 27340.
[14] [14] Davis K M, Miura K, Sugimoto N, et al. Writing waveguides in glass with a femtosecond laser[J]. Optics Letters, 1996, 21(21): 1729–1731.
[15] [15] Kovachev L M, Georgieva D A. The long range filament stability: balance between non-paraxial diffraction and third-order non-linearity[J]. Proceedings of SPIE, 2013, 8770: 87701G.
[16] [16] Daigle J F, Kosareva O, Panov N, et al. A simple method to significantly increase filaments’ length and ionization density[J]. Applied Physics B, 2009, 94(2): 249–257.
[17] [17] Couairon A, Mysyrowicz A. Femtosecond filamentation in transparent media[J]. Physics Reports, 2007, 441(2–4): 47–189.
[18] [18] Zergioti I, Kyrkis K D, Papazoglou D G, et al. Structural modi-fications in fused silica induced by ultraviolet fs laser fila-ments[J]. Applied Surface Science, 2007, 253(19): 7865–7868.
[19] [19] Hosseini S A, Herman P R. Method of material processing by laser filamentation: WO/2012/006736 Kind Code: A3[P]. 2012-01-19.
[20] [20] Sheng Zhengming. Advances in high field laser physics[M]. Shanghai: Shanghai Jiao Tong University Press, 2014.
[21] [21] Braun A, Korn G, Liu X, et al. Self-channeling of high-peak-power femtosecond laser pulses in air[J]. Optics Letters, 1995, 20(1): 73–75.
[22] [22] Brodeur A, Chien C Y, Ilkov F A, et al. Moving focus in the propagation of ultrashort laser pulses in air[J]. Optics Letters, 1997, 22(5): 304–306.
[23] [23] Mlejnek M, Wright E M, Moloney J V. Dynamic spatial replen-ishment of femtosecond pulses propagating in air[J]. Optics Letters, 1998, 23(5): 382–384.
[24] [24] Ashkenasi D, Kaszemeikat T, Mueller N, et al. Machining of glass and quartz using nanosecond and picosecond laser pulses[J]. Proceedings of SPIE, 2012, 8243: 82430M.
[25] [25] Du Keming, Brüning S, Gillner A. High-power picosecond laser with 400W average power for large scale applications[J]. Proceedings of SPIE, 2012, 8244: 82440P.
[26] [26] Zvorykin V D, Ionin A A, Levchenko A O, et al. Effects of pi-cosecond terawatt UV laser beam filamentation and a repeti-tive pulse train on creation of prolonged plasma channels in atmospheric air[J]. Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms, 2013, 309: 218–222.
[27] [27] Tzortzakis S, Lamouroux B, Chiron A, et al. Femtosecond and picosecond ultraviolet laser filaments in air: experiments and simulations[J]. Optics Communications, 2001, 197(1–3): 131–143.
[28] [28] Ni Jielei, Cheng Ya. Several new phenomena in femtosecond laser filamentation[J]. Journal of Shenzhen University Science and Engineering, 2014, 31(1): 1–15.
[29] [29] Ju Jingjing, Liu Jiansheng, Wang Cheng, et al. Effects of initial humidity and temperature on laser-filamentation-induced condensation and snow formation[J]. Applied Physics B, 2013, 110(3): 375–380.
[30] [30] Lin Zunqi, Chen Weibiao, Lou Qihong, et al. Review on the recent progress of laser frontiers in China[J]. Science China Technological Science, 2013, 56(7): 1571–1588.
[31] [31] Ju Jingjing, Liu Jiansheng, Wang Cheng, et al. La-ser-filamentation-induced condensation and snow formation in a cloud chamber[J]. Optics Letters, 2012, 37(7): 1214–1216.
[32] [32] Kiselev D, Woeste L, Wolf J P. Filament-induced laser ma-chining (FILM)[J]. Applied Physics B, 2010, 100(3): 515–520.
[33] [33] University Beijing Technology. Three-dimensional laser precise curved surface milling method: China, CN201610218392.8[P]. 2016-08-17.
[35] [35] Rofin Sinar Technologies Inc. Method and apparatus for non-ablative and/or photo acoustic compression machining a transparent target: China, CN201410379877.6[P]. 2015-02-11.
[36] [36] Rofin Sinar Technologies Inc. System for performing laser filamentation within transparent materials: China, CN201410380104.X[P]. 2015-02-11.
[37] [37] Rofin Sinar Technologies Inc. Method and device for per-forming laser filamentation within transparent materials: China, CN201410380147.8[P]. 2015-02-11.
[38] [38] Butkus S, Gai auskas E, Paipulas D, et al. Rapid microfabri-cation of transparent materials using filamented femtosecond laser pulses[J]. Applied Physics A, 114(1): 81–90.
[39] [39] Butkus S, Paipulas D, Viburys , et al. Rapid microfabrication of transparent materials using a filamented beam of the IR femtosecond laser[J]. Proceedings of SPIE, 2014, 8972: 897216.
[40] [40] Butkus S, Alesenkov A, Paipulas D, et al. Micromachining of transparent, semiconducting and metallic substrates using femtosecond laser beams[J]. Journal of Laser Micro/ Nanoengineering, 2016, 11(1): 81–86.
[41] [41] Liu Jun, Chen Xiaowei, Liu Jiansheng, et al. Spectrum re-shaping and pulse self-compression in normally dispersive media with negatively chirped femtosecond pulses[J]. Optics Express, 2006, 14(2): 979–987.
[42] [42] Feng Liubin, Lu Xin, Liu Xiaolong, et al. Off-focus generation of strong super-continuum emission in fused silica using high power femtosecond laser pulses[J]. Acta Physics Sinica, 2012, 16(17): 174206–1–6.
[43] [43] Varel H, Ashkenasi D, Rosenfeld A, et al. Micromachining of quartz with ultrashort laser pulses[J]. Applied Physics A, 1997, 65(4–5): 367–373.
[44] [44] Watanabe W, Tamaki T, Itoh K. Filamentation in laser micro-processing and microwelding[J]. Proceedings of SPIE, 2007, 6733: 67332F.
[45] [45] Watanabe W, Onda S, Tamaki T, et al. Space-selective laser joining of dissimilar transparent materials using femtosecond laser pulses[J]. Applied Physics Letters, 2006, 89(2): 021106.
[46] [46] Tamaki T, Watanabe W, Itoh K. Laser micro-welding of transparent materials by a localized heat accumulation effect using a femtosecond fiber laser at 1558 nm[J]. Optics Express, 2006, 14(22): 10460–10468.
[47] [47] Yoshino F, Zhang Haibin, Arai A. Ultrashort pulse laser pro-cessing of transparent materials[J]. Journal of Laser Mi-cro/Nanoengineering, 2009, 4(3): 212–217.
[48] [48] Courvoisier F, Stoian R, Couairon A. Ultrafast laser micro- and nano-processing with nondiffracting and curved beams: invited paper for the section: hot topics in ultrafast lasers[J]. Optics & Laser Technology, 2016, 80: 125–137.
[49] [49] Juodkazis S, Mizeikis V, Gai auskas E, et al. Studies of femtosecond pulse filamentation in glasses[J]. Proceedings of SPIE, 2006, 6053: 60530R.
[50] [50] Gao Hui, Zhao Jiayu, Liu Weiwei. Control of multiple filamen-tation induced by ultrafast laser pulses[J]. Optics and Precision Engineering, 2013, 21(3): 598–607.
[51] [51] Plat K, von Witzendorff P, Suttmann O, et al. Process strategy for drilling of chemically strengthened glass with picosecond laser radiation[J]. Journal of Laser Applications, 2016, 28(2): 022201.
[52] [52] Galinis J, Tamo auskas G, Gra ulevi i tè I, et al. Filamentation and supercontinuum generation in solid-state dielectric media with picosecond laser pulses[J]. Physical Review A, 2015, 92(3): 033857.
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Lingfei Ji, Amina, Tianyang Yan, Wenhao Wang, Tingru Wang, Zhenyuan Lin, Qiang Yang, Liting Hu. Research progress of ultrafast laser industrial applications based on filamentation[J]. Opto-Electronic Engineering, 2017, 44(9): 851
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Received: Jun. 4, 2017
Accepted: --
Published Online: Dec. 1, 2017
The Author Email: Ji Lingfei (ncltji@bjut.edu.cn)