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Femtosecond laser induced photochemistry in materials tailored with photosensitive agents [Invited] |
Optical Materials Express, Vol. 1, Issue 5, pp. 866-882 (2011)
http://dx.doi.org/10.1364/OME.1.000866
Acrobat PDF (1120 KB)
Abstract
This article deals with the recent advances in photochemistry in optical materials induced by femtosecond laser pulses. The field of investigation of this paper is limited to bulk solid isotropic transparent materials (glasses and polymers), specifically tailored with photoactive agents. The formation mechanisms of laser-induced color centers, nanoclusters, nanoparticles and nanocrystallites are reviewed and argued, in particular the influence of the temperature during or after the laser irradiation. The relation between the photo-induced structures and the optical property modifications are discussed, as well as some applications.
© 2011 OSA
1. Introduction
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L. Sudrie, M. Franco, B. Prade, and A. Mysyrowicz, “Study of damage in fused silica induced by ultra-short IR laser pulses,” Opt. Commun. 191(3-6), 333–339 (2001). [CrossRef]
K. M. Davis, K. Miura, N. Sugimoto, and K. Hirao, “Writing waveguides in glass with a femtosecond laser,” Opt. Lett. 21(21), 1729–1731 (1996). [CrossRef] [PubMed]
D. Homoelle, S. Wielandy, A. L. Gaeta, N. F. Borrelli, and C. Smith, “Infrared photosensitivity in silica glasses exposed to femtosecond laser pulses,” Opt. Lett. 24(18), 1311–1313 (1999). [CrossRef] [PubMed]
L. Sudrie, M. Franco, B. Prade, and A. Mysyrowicz, “Study of damage in fused silica induced by ultra-short IR laser pulses,” Opt. Commun. 191(3-6), 333–339 (2001). [CrossRef]
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A. Podlipensky, A. Abdolvand, G. Seifert, and H. Graener, “Femtosecond laser assisted production of dichroitic 3D structures in composite glass containing Ag nanoparticles,” Appl. Phys., A Mater. Sci. Process. 80(8), 1647–1652 (2005). [CrossRef]
Y. Dai, B. Zhu, J. Qiu, H. Ma, B. Lu, and B. Yu, “Space-selective precipitation of functional crystals in glass by using a high repetition rate femtosecond laser,” Chem. Phys. Lett. 443(4-6), 253–257 (2007). [CrossRef]
S. D. Stookey, “Photosensitive glass,” Ind. Eng. Chem. 41(4), 856–861 (1949). [CrossRef]
J. Qiu, X. Jiang, C. Zhu, H. Inouye, J. Si, and K. Hirao, “Optical properties of structurally modified glasses doped with gold ions,” Opt. Lett. 29(4), 370–372 (2004). [CrossRef] [PubMed]
Y. Cheng, K. Sugioka, M. Masuda, K. Shihoyama, K. Toyoda, and K. Midorikawa, “Optical gratings embedded in photosensitive glass by photochemical reaction using a femtosecond laser,” Opt. Express 11(15), 1809–1816 (2003). [CrossRef] [PubMed]
Y. Shimotsuma, M. Sakakura, K. Miura, J. Qiu, P. G. Kazansky, K. Fujita, and K. Hirao, “Application of femtosecond-laser induced nanostructures in optical memory,” J. Nanosci. Nanotechnol. 7(1), 94–104 (2007). [PubMed]
J. Qiu, P. G. Kazanski, J. Si, K. Miura, T. Mitsuyu, K. Hirao, and A. L. Gaeta, “Memorized polarization-dependent light scattering in rare-earth-ion-doped glass,” Appl. Phys. Lett. 77(13), 1940–1942 (2000). [CrossRef]
Y. Shimotsuma, M. Sakakura, K. Miura, J. Qiu, P. G. Kazansky, K. Fujita, and K. Hirao, “Application of femtosecond-laser induced nanostructures in optical memory,” J. Nanosci. Nanotechnol. 7(1), 94–104 (2007). [PubMed]
K. Miura, J. Qiu, T. Mitsuyu, and K. Hirao, “Space-selective growth of frequency-conversion crystals in glasses with ultrashort infrared laser pulses,” Opt. Lett. 25(6), 408–410 (2000). [CrossRef] [PubMed]
M. Bellec, A. Royon, B. Bousquet, K. Bourhis, M. Treguer, T. Cardinal, M. Richardson, and L. Canioni, “Beat the diffraction limit in 3D direct laser writing in photosensitive glass,” Opt. Express 17(12), 10304–10318 (2009). [CrossRef] [PubMed]
A. Royon, K. Bourhis, M. Bellec, G. Papon, B. Bousquet, Y. Deshayes, T. Cardinal, and L. Canioni, “Silver clusters embedded in glass as a perennial high capacity optical recording medium,” Adv. Mater. (Deerfield Beach Fla.) 22(46), 5282–5286 (2010). [CrossRef] [PubMed]
L. Canioni, M. Bellec, A. Royon, B. Bousquet, and T. Cardinal, “Three-dimensional optical data storage using third-harmonic generation in silver zinc phosphate glass,” Opt. Lett. 33(4), 360–362 (2008). [CrossRef] [PubMed]
Y. Watanabe, G. Namikawa, T. Onuki, K. Nishio, and T. Tsuchiya, “Photosensitivity in phosphate glass doped with Ag+ upon exposure to near-ultraviolet femtosecond laser pulses,” Appl. Phys. Lett. 78(15), 2125–2127 (2001). [CrossRef]
M. Bellec, A. Royon, K. Bourhis, J. Choi, B. Bousquet, M. Treguer, T. Cardinal, J.-J. Videau, M. Richardson, and L. Canioni, “3D patterning at the nanoscale of fluorescent emitters in glass,” J. Phys. Chem. C 114(37), 15584–15588 (2010). [CrossRef]
T. Gleitsmann, B. Stegemann, and T. M. Bernhardt, “Femtosecond-laser-activated fluorescence from silver oxide nanoparticles,” Appl. Phys. Lett. 84(20), 4050–4052 (2004). [CrossRef]
T. Gleitsmann, T. M. Bernhardt, and L. Wöste, “Luminescence properties of femtosecond-laser-activated silver oxide nanoparticles embedded in a biopolymer matrix,” Appl. Phys., A Mater. Sci. Process. 82(1), 125–130 (2006). [CrossRef]
G. De Cremer, Y. Antoku, M. B. J. Roeffaers, M. Sliwa, J. Van Noyen, S. Smout, J. Hofkens, D. E. De Vos, B. F. Sels, and T. Vosch, “Photoactivation of silver-exchanged zeolite A,” Angew. Chem. Int. Ed. Engl. 47(15), 2813–2816 (2008). [CrossRef] [PubMed]
G. De Cremer, E. Coutiño-Gonzalez, M. B. J. Roeffaers, D. E. De Vos, J. Hofkens, T. Vosch, and B. F. Sels, “In situ observation of the emission characteristics of zeolite-hosted silver species during heat treatment,” ChemPhysChem 11(8), 1627–1631 (2010). [PubMed]
K. Miura, J. Qiu, T. Mitsuyu, and K. Hirao, “Space-selective growth of frequency-conversion crystals in glasses with ultrashort infrared laser pulses,” Opt. Lett. 25(6), 408–410 (2000). [CrossRef] [PubMed]
S. D. Stookey, “Photosensitive glass,” Ind. Eng. Chem. 41(4), 856–861 (1949). [CrossRef]
M. Bellec, A. Royon, B. Bousquet, K. Bourhis, M. Treguer, T. Cardinal, M. Richardson, and L. Canioni, “Beat the diffraction limit in 3D direct laser writing in photosensitive glass,” Opt. Express 17(12), 10304–10318 (2009). [CrossRef] [PubMed]
L. Canioni, M. Bellec, A. Royon, B. Bousquet, and T. Cardinal, “Three-dimensional optical data storage using third-harmonic generation in silver zinc phosphate glass,” Opt. Lett. 33(4), 360–362 (2008). [CrossRef] [PubMed]
S. D. Stookey, “Photosensitive glass,” Ind. Eng. Chem. 41(4), 856–861 (1949). [CrossRef]
Y. Cheng, K. Sugioka, M. Masuda, K. Shihoyama, K. Toyoda, and K. Midorikawa, “Optical gratings embedded in photosensitive glass by photochemical reaction using a femtosecond laser,” Opt. Express 11(15), 1809–1816 (2003). [CrossRef] [PubMed]
M. Masuda, K. Sugioka, Y. Cheng, N. Aoki, M. Kawachi, K. Shihoyama, K. Toyoda, H. Helvajian, and K. Midorikawa, “3-D microstructuring inside photosensitive glass by femtosecond laser excitation,” Appl. Phys., A Mater. Sci. Process. 76(5), 857–860 (2003). [CrossRef]
M. Bellec, A. Royon, K. Bourhis, J. Choi, B. Bousquet, M. Treguer, T. Cardinal, J.-J. Videau, M. Richardson, and L. Canioni, “3D patterning at the nanoscale of fluorescent emitters in glass,” J. Phys. Chem. C 114(37), 15584–15588 (2010). [CrossRef]
Y. Cheng, K. Sugioka, K. Midorikawa, M. Masuda, K. Toyoda, M. Kawachi, and K. Shihoyama, “Three-dimensional micro-optical components embedded in photosensitive glass by a femtosecond laser,” Opt. Lett. 28(13), 1144–1146 (2003). [CrossRef] [PubMed]
S. D. Stookey, “Photosensitive glass,” Ind. Eng. Chem. 41(4), 856–861 (1949). [CrossRef]
J. Qiu, X. Jiang, C. Zhu, H. Inouye, J. Si, and K. Hirao, “Optical properties of structurally modified glasses doped with gold ions,” Opt. Lett. 29(4), 370–372 (2004). [CrossRef] [PubMed]
Y. Dai, B. Zhu, J. Qiu, H. Ma, B. Lu, and B. Yu, “Space-selective precipitation of functional crystals in glass by using a high repetition rate femtosecond laser,” Chem. Phys. Lett. 443(4-6), 253–257 (2007). [CrossRef]
Y. Shimotsuma, M. Sakakura, K. Miura, J. Qiu, P. G. Kazansky, K. Fujita, and K. Hirao, “Application of femtosecond-laser induced nanostructures in optical memory,” J. Nanosci. Nanotechnol. 7(1), 94–104 (2007). [PubMed]
J. Qiu, K. Miura, T. Suzuki, T. Mitsuyu, and K. Hirao, “Permanent photoreduction of Sm3+ to Sm2+ inside a sodium aluminoborate glass by an infrared femtosecond pulsed laser,” Appl. Phys. Lett. 74(1), 10–12 (1999). [CrossRef]
J. Qiu, P. G. Kazanski, J. Si, K. Miura, T. Mitsuyu, K. Hirao, and A. L. Gaeta, “Memorized polarization-dependent light scattering in rare-earth-ion-doped glass,” Appl. Phys. Lett. 77(13), 1940–1942 (2000). [CrossRef]
Y. Liu, M. Shimizu, B. Zhu, Y. Dai, B. Qian, J. Qiu, Y. Shimotsuma, K. Miura, and K. Hirao, “Micromodification of element distribution in glass using femtosecond laser irradiation,” Opt. Lett. 34(2), 136–138 (2009). [CrossRef] [PubMed]
S. D. Stookey, “Photosensitive glass,” Ind. Eng. Chem. 41(4), 856–861 (1949). [CrossRef]
M. Masuda, K. Sugioka, Y. Cheng, N. Aoki, M. Kawachi, K. Shihoyama, K. Toyoda, H. Helvajian, and K. Midorikawa, “3-D microstructuring inside photosensitive glass by femtosecond laser excitation,” Appl. Phys., A Mater. Sci. Process. 76(5), 857–860 (2003). [CrossRef]
S. D. Stookey, “Photosensitive glass,” Ind. Eng. Chem. 41(4), 856–861 (1949). [CrossRef]
Y. Cheng, K. Sugioka, M. Masuda, K. Shihoyama, K. Toyoda, and K. Midorikawa, “Optical gratings embedded in photosensitive glass by photochemical reaction using a femtosecond laser,” Opt. Express 11(15), 1809–1816 (2003). [CrossRef] [PubMed]
M. Masuda, K. Sugioka, Y. Cheng, N. Aoki, M. Kawachi, K. Shihoyama, K. Toyoda, H. Helvajian, and K. Midorikawa, “3-D microstructuring inside photosensitive glass by femtosecond laser excitation,” Appl. Phys., A Mater. Sci. Process. 76(5), 857–860 (2003). [CrossRef]
Y. Cheng, K. Sugioka, K. Midorikawa, M. Masuda, K. Toyoda, M. Kawachi, and K. Shihoyama, “Three-dimensional micro-optical components embedded in photosensitive glass by a femtosecond laser,” Opt. Lett. 28(13), 1144–1146 (2003). [CrossRef] [PubMed]
P. Zijlstra, J. W. M. Chon, and M. Gu, “Five-dimensional optical recording mediated by surface plasmons in gold nanorods,” Nature 459(7245), 410–413 (2009). [CrossRef] [PubMed]
A. Podlipensky, J. Lange, G. Seifert, H. Graener, and I. Cravetchi, “Second-harmonic generation from ellipsoidal silver nanoparticles embedded in silica glass,” Opt. Lett. 28(9), 716–718 (2003). [CrossRef] [PubMed]
A. Podlipensky, A. Abdolvand, G. Seifert, and H. Graener, “Femtosecond laser assisted production of dichroitic 3D structures in composite glass containing Ag nanoparticles,” Appl. Phys., A Mater. Sci. Process. 80(8), 1647–1652 (2005). [CrossRef]
A. Unal, A. Stalmashonak, G. Seifert, and H. Graener, “Ultrafast dynamics of silver nanoparticle shape transformation studied by femtosecond pulse-pair irradiation,” Phys. Rev. B 79(11), 115411 (2009). [CrossRef]
A. Unal, A. Stalmashonak, G. Seifert, and H. Graener, “Time-resolved investigation of laser-induced shape transformation of silver nanoparticles,” Phys. Rev. B 80(11), 115415 (2009). [CrossRef]
A. Stalmashonak, A. Podlipensky, G. Seifert, and H. Graener, “Intensity-driven, laser induced transformation of Ag nanospheres to anisotropic shapes,” Appl. Phys. B 94(3), 459–465 (2009). [CrossRef]
R. R. Gattass and E. Mazur, “Femtosecond laser micromachining in transparent materials,” Nat. Photonics 2(4), 219–225 (2008). [CrossRef]
M. Ams, G. D. Marshall, P. Dekker, M. Dubov, V. K. Mezentsev, I. Bennion, and M. J. Withford, “Investigation of ultrafast laser–photonic material interactions: challenges for directly written glass photonics,” IEEE J. Sel. Top. Quantum Electron. 14(5), 1370–1381 (2008). [CrossRef]
C. B. Schaffer, A. Brodeur, and E. Mazur, “Laser-induced breakdown and damage in bulk transparent materials induced by tightly focused femtosecond laser pulses,” Meas. Sci. Technol. 12(11), 1784–1794 (2001). [CrossRef]
S. S. Mao, F. Quéré, S. Guizard, X. Mao, R. E. Russo, G. Petite, and P. Martin, “Dynamics of femtosecond laser interactions with dielectrics,” Appl. Phys., A Mater. Sci. Process. 79, 1695–1709 (2004). [CrossRef]
K. Miura, J. Qiu, H. Inouye, T. Mitsuyu, and K. Hirao, “Photowritten optical waveguides in various glasses with ultrashort pulse laser,” Appl. Phys. Lett. 71(23), 3329–3331 (1997). [CrossRef]
S. Juodkazis, K. Nishimura, S. Tanaka, H. Misawa, E. G. Gamaly, B. Luther-Davies, L. Hallo, P. Nicolai, and V. T. Tikhonchuk, “Laser-induced microexplosion confined in the bulk of a sapphire crystal: evidence of multimegabar pressures,” Phys. Rev. Lett. 96(16), 166101 (2006). [CrossRef] [PubMed]
P. P. Rajeev, M. Gertsvolf, E. Simova, C. Hnatovsky, R. S. Taylor, V. R. Bhardwaj, D. M. Rayner, and P. B. Corkum, “Memory in nonlinear ionization of transparent solids,” Phys. Rev. Lett. 97(25), 253001 (2006). [CrossRef] [PubMed]
M. Bellec, A. Royon, K. Bourhis, J. Choi, B. Bousquet, M. Treguer, T. Cardinal, J.-J. Videau, M. Richardson, and L. Canioni, “3D patterning at the nanoscale of fluorescent emitters in glass,” J. Phys. Chem. C 114(37), 15584–15588 (2010). [CrossRef]
R. R. Gattass and E. Mazur, “Femtosecond laser micromachining in transparent materials,” Nat. Photonics 2(4), 219–225 (2008). [CrossRef]
Y.-L. Zhang, Q.-D. Chen, H. Xia, and H.-B. Sun, “Designable 3D nanofabrication by femtosecond laser direct writing,” Nano Today 5(5), 435–448 (2010). [CrossRef]
M. Ams, G. D. Marshall, P. Dekker, M. Dubov, V. K. Mezentsev, I. Bennion, and M. J. Withford, “Investigation of ultrafast laser–photonic material interactions: challenges for directly written glass photonics,” IEEE J. Sel. Top. Quantum Electron. 14(5), 1370–1381 (2008). [CrossRef]
S. S. Mao, F. Quéré, S. Guizard, X. Mao, R. E. Russo, G. Petite, and P. Martin, “Dynamics of femtosecond laser interactions with dielectrics,” Appl. Phys., A Mater. Sci. Process. 79, 1695–1709 (2004). [CrossRef]
R. Taylor, C. Hnatovsky, and E. Simova, “Applications of femtosecond laser induced self-organized planar nanocracks inside fused silica glass,” Laser Photonics Rev. 2(1-2), 26–46 (2008). [CrossRef]
2. Single pulse energy deposition and relaxation
2.1 Multiphoton ionization and tunneling ionization
2.2 Avalanche ionization and multiphoton “forest fire” ionization
L. N. Gaier, M. Lein, M. I. Stockman, G. L. Yudin, P. B. Corkum, M. Y. Ivanov, and P. L. Knight, “Hole-assisted energy deposition in dielectrics and clusters in the multiphoton regime,” J. Mod. Opt. 52(7), 1019–1030 (2005). [CrossRef]
L. N. Gaier, M. Lein, M. I. Stockman, G. L. Yudin, P. B. Corkum, M. Y. Ivanov, and P. L. Knight, “Hole-assisted energy deposition in dielectrics and clusters in the multiphoton regime,” J. Mod. Opt. 52(7), 1019–1030 (2005). [CrossRef]
D. M. Rayner, A. Naumov, and P. B. Corkum, “Ultrashort pulse non-linear optical absorption in transparent media,” Opt. Express 13(9), 3208–3217 (2005). [CrossRef] [PubMed]
3. Multi-pulse cumulative thermal effects and chemical diffusion
3.1 Thermal effects
C. B. Schaffer, J. F. Garcia, and E. Mazur, “Bulk heating of transparent materials using a high-repetition-rate femtosecond laser,” Appl. Phys., A Mater. Sci. Process. 76(3), 351–354 (2003). [CrossRef]
R. R. Gattass, L. R. Cerami, and E. Mazur, “Micromachining of bulk glass with bursts of femtosecond laser pulses at variable repetition rates,” Opt. Express 14(12), 5279–5284 (2006). [CrossRef] [PubMed]
S. M. Eaton, H. Zhang, P. R. Herman, F. Yoshino, L. Shah, J. Bovatsek, and A. Y. Arai, “Heat accumulation effects in femtosecond laser-written waveguides with variable repetition rate,” Opt. Express 13(12), 4708–4716 (2005). [CrossRef] [PubMed]
R. Taylor, C. Hnatovsky, and E. Simova, “Applications of femtosecond laser induced self-organized planar nanocracks inside fused silica glass,” Laser Photonics Rev. 2(1-2), 26–46 (2008). [CrossRef]
M. Bellec, A. Royon, B. Bousquet, K. Bourhis, M. Treguer, T. Cardinal, M. Richardson, and L. Canioni, “Beat the diffraction limit in 3D direct laser writing in photosensitive glass,” Opt. Express 17(12), 10304–10318 (2009). [CrossRef] [PubMed]
M. Sakakura, M. Terazima, Y. Shimotsuma, K. Miura, and K. Hirao, “Heating and rapid cooling of bulk glass after photoexcitation by a focused femtosecond laser pulse,” Opt. Express 15(25), 16800–16807 (2007). [CrossRef] [PubMed]
M. Shimizu, M. Sakakura, M. Ohnishi, Y. Shimotsuma, T. Nakaya, K. Miura, and K. Hirao, “Mechanism of heat-modification inside a glass after irradiation with high-repetition rate femtosecond laser pulses,” J. Appl. Phys. 108(7), 073533 (2010). [CrossRef]
M. Bellec, A. Royon, B. Bousquet, K. Bourhis, M. Treguer, T. Cardinal, M. Richardson, and L. Canioni, “Beat the diffraction limit in 3D direct laser writing in photosensitive glass,” Opt. Express 17(12), 10304–10318 (2009). [CrossRef] [PubMed]
3.2 Chemical diffusion
M. Martin, J. J. Videau, L. Canioni, F. Adamietz, L. Sarger, and G. Le Flem, “Planar waveguides formed by Ag+-Na+ ion exchange in nonlinear optical glasses: diffusion and optical properties,” Appl. Opt. 39(3), 435–440 (2000). [CrossRef] [PubMed]
S. Kanehira, K. Miura, and K. Hirao, “Ion exchange in glass using femtosecond laser irradiation,” Appl. Phys. Lett. 93(2), 023112 (2008). [CrossRef]
Y. Dai, G. Yu, M. He, H. Ma, X. Yan, and G. Ma, “High repetition rate femtosecond laser irradiation-induced elements redistribution in Ag-doped glass,” Appl. Phys. B 103(3), 663–667 (2011). [CrossRef]
M. Bellec, A. Royon, B. Bousquet, K. Bourhis, M. Treguer, T. Cardinal, M. Richardson, and L. Canioni, “Beat the diffraction limit in 3D direct laser writing in photosensitive glass,” Opt. Express 17(12), 10304–10318 (2009). [CrossRef] [PubMed]
Y. Liu, M. Shimizu, B. Zhu, Y. Dai, B. Qian, J. Qiu, Y. Shimotsuma, K. Miura, and K. Hirao, “Micromodification of element distribution in glass using femtosecond laser irradiation,” Opt. Lett. 34(2), 136–138 (2009). [CrossRef] [PubMed]
3.3 Discussion
S. Coffa, J. M. Poate, D. C. Jacobson, W. Frank, and W. Gustin, “Determination of diffusion mechanisms in amorphous silicon,” Phys. Rev. B Condens. Matter 45(15), 8355–8358 (1992). [CrossRef] [PubMed]
M. Martin, J. J. Videau, L. Canioni, F. Adamietz, L. Sarger, and G. Le Flem, “Planar waveguides formed by Ag+-Na+ ion exchange in nonlinear optical glasses: diffusion and optical properties,” Appl. Opt. 39(3), 435–440 (2000). [CrossRef] [PubMed]
4. Experiment
4.1 Generic experimental setup
4.2 Influence of the experimental parameters
- - Pulse energy : The pulse energy is the most important parameter. Together with the numerical aperture of the focusing element, it determines the fluence threshold for material modification as well as the number of generated photoelectrons.
- - Pulse duration : The pulse duration, in the majority of the cases, is not critical as long as it remains ≤1 ps, the time necessary for heat to start to diffuse (electron-phonon coupling). Also, for avalanche ionization to occur, it must be higher than 50 fs [65].
L. N. Gaier, M. Lein, M. I. Stockman, G. L. Yudin, P. B. Corkum, M. Y. Ivanov, and P. L. Knight, “Hole-assisted energy deposition in dielectrics and clusters in the multiphoton regime,” J. Mod. Opt. 52(7), 1019–1030 (2005). [CrossRef]
- - Wavelength : The wavelength of the laser is associated with the band gap of the material and determines the order of multiphoton ionization. If the laser emits in the UV, since most materials have electronic resonances in this spectral region, the absorption will be linear (cf. Fig. 1(a)). If the laser emits in the visible-NIR, depending on the cutoff wavelength of the material, multiphoton ionization can occur (cf. Fig. 1(b)). The ionization rate depends both on the laser wavelength and the material band gap [64].
- - Repetition rate : The repetition rate of the laser plays a role in the thermal accumulation effects leading to a controlled increase of the temperature in the focal region [69]. For a given material, if it is lower than 1/τ D, no multi-pulse cumulative effects take place. On the contrary, if it is higher than 1/τ D, cumulative effects may occur, leading to a local increase of the temperature and to the diffusion activation of chemical species.
S. M. Eaton, H. Zhang, P. R. Herman, F. Yoshino, L. Shah, J. Bovatsek, and A. Y. Arai, “Heat accumulation effects in femtosecond laser-written waveguides with variable repetition rate,” Opt. Express 13(12), 4708–4716 (2005). [CrossRef] [PubMed]
- - Number of pulses / Writing speed : When cumulative effects are needed, the number of pulses influences the response of the material. When the material is moved, the writing speed v, associated to the repetition rate R of the laser, determines the number of pulses N hitting the sample in a given area and time. In the latter case, the number of pulses is given by , where w 0 is the beam waist.
- - Polarization: The polarization of the beam is not critical in the majority of the resulting modifications, but nevertheless influences the interaction. For photo-ionization, the multiphoton ionization cross section is significantly higher for linear polarization than for circular polarization [79]. Concerning the photo-induced modifications, when the polarization is circular, the efficiency of laser-written waveguides is better by reducing the propagation losses on the laser-induced structure [80
V. V. Temnov, K. Sokolowski-Tinten, P. Zhou, A. El-Khamhawy, and D. von der Linde, “Multiphoton ionization in dielectrics: comparison of circular and linear polarization,” Phys. Rev. Lett. 97(23), 237403 (2006). [CrossRef] [PubMed]
] or by limiting the nonlinear RI change during the writing process of waveguides [81M. Ams, G. D. Marshall, and M. J. Withford, “Study of the influence of femtosecond laser polarisation on direct writing of waveguides,” Opt. Express 14(26), 13158–13163 (2006). [CrossRef] [PubMed]
]. The laser-induced reshaping of metallic NPs into non-spherical ones is also dependent on the polarization [82A. Ferrer, A. Ruiz de la Cruz, D. Puerto, W. Gawelda, J. A. Vallés, M. A. Rebolledo, V. Berdejo, J. Siegel, and J. Solis, “In situ assessment and minimization of nonlinear propagation effects for femtosecond-laser waveguide writing in dielectrics,” J. Opt. Soc. Am. B 27(8), 1688–1692 (2010). [CrossRef]
]. An opposite case is the creation of bulk “nanograting” structures, which can only be created with a linearly polarized beam [83A. Stalmashonak, H. Graener, and G. Seifert, “Transformation of silver nanospheres embedded in glass to nanodisks using circularly polarized femtosecond pulses,” Appl. Phys. Lett. 94(19), 193111 (2009). [CrossRef]
].V. R. Bhardwaj, E. Simova, P. P. Rajeev, C. Hnatovsky, R. S. Taylor, D. M. Rayner, and P. B. Corkum, “Optically produced arrays of planar nanostructures inside fused silica,” Phys. Rev. Lett. 96(5), 057404 (2006). [CrossRef] [PubMed]
- - Numerical aperture : The numerical aperture NA of the focusing element determines the size of the irradiated area, through the approximated relation (valid for NA<0.7) for a Gaussian beam [84], where λ 0 is the laser wavelength in vacuum. Together with the pulse energy, it determines the fluence threshold for material modification [85
J. Squier and J. Muller, “High resolution nonlinear microscopy: A review of sources and methods for achieving optical imaging,” Rev. Sci. Instrum. 72(7), 2855–2867 (2001). [CrossRef]
].J. B. Ashcom, R. R. Gattass, C. B. Schaffer, and E. Mazur, “Numerical aperture dependence of damage and supercontinuum generation from femtosecond laser pulses in bulk fused silica,” J. Opt. Soc. Am. B 23(11), 2317–2322 (2006). [CrossRef]
5. Laser activation of photochemical modifications
S. D. Stookey, “Photosensitive glass,” Ind. Eng. Chem. 41(4), 856–861 (1949). [CrossRef]
5.1 Color centers and valence state manipulation
J. Qiu, X. Jiang, C. Zhu, H. Inouye, J. Si, and K. Hirao, “Optical properties of structurally modified glasses doped with gold ions,” Opt. Lett. 29(4), 370–372 (2004). [CrossRef] [PubMed]
J. Qiu, C. Zhu, T. Nakaya, J. Si, K. Kojima, F. Ogura, and K. Hirao, “Space-selective valence state manipulation of transition metal ions inside glasses by a femtosecond laser,” Appl. Phys. Lett. 79(22), 3567–3569 (2001). [CrossRef]
S. D. Stookey, “Photosensitive glass,” Ind. Eng. Chem. 41(4), 856–861 (1949). [CrossRef]
J. Qiu, X. Jiang, C. Zhu, H. Inouye, J. Si, and K. Hirao, “Optical properties of structurally modified glasses doped with gold ions,” Opt. Lett. 29(4), 370–372 (2004). [CrossRef] [PubMed]
J. Qiu, C. Zhu, T. Nakaya, J. Si, K. Kojima, F. Ogura, and K. Hirao, “Space-selective valence state manipulation of transition metal ions inside glasses by a femtosecond laser,” Appl. Phys. Lett. 79(22), 3567–3569 (2001). [CrossRef]
J. Qiu, K. Miura, T. Suzuki, T. Mitsuyu, and K. Hirao, “Permanent photoreduction of Sm3+ to Sm2+ inside a sodium aluminoborate glass by an infrared femtosecond pulsed laser,” Appl. Phys. Lett. 74(1), 10–12 (1999). [CrossRef]
J. Qiu, X. Jiang, C. Zhu, H. Inouye, J. Si, and K. Hirao, “Optical properties of structurally modified glasses doped with gold ions,” Opt. Lett. 29(4), 370–372 (2004). [CrossRef] [PubMed]
J. Qiu, K. Miura, T. Suzuki, T. Mitsuyu, and K. Hirao, “Permanent photoreduction of Sm3+ to Sm2+ inside a sodium aluminoborate glass by an infrared femtosecond pulsed laser,” Appl. Phys. Lett. 74(1), 10–12 (1999). [CrossRef]
Y. Shimotsuma, M. Sakakura, K. Miura, J. Qiu, P. G. Kazansky, K. Fujita, and K. Hirao, “Application of femtosecond-laser induced nanostructures in optical memory,” J. Nanosci. Nanotechnol. 7(1), 94–104 (2007). [PubMed]
J. Qiu, K. Miura, T. Suzuki, T. Mitsuyu, and K. Hirao, “Permanent photoreduction of Sm3+ to Sm2+ inside a sodium aluminoborate glass by an infrared femtosecond pulsed laser,” Appl. Phys. Lett. 74(1), 10–12 (1999). [CrossRef]
5.2 Nanoclusters
I. Díez and R. H. A. Ras, “Fluorescent silver nanoclusters,” Nanoscale 3(5), 1963–1970 (2011). [CrossRef] [PubMed]
S. Coffa, J. M. Poate, D. C. Jacobson, W. Frank, and W. Gustin, “Determination of diffusion mechanisms in amorphous silicon,” Phys. Rev. B Condens. Matter 45(15), 8355–8358 (1992). [CrossRef] [PubMed]
M. Kaempfe, G. Seifert, K.-J. Berg, H. Hofmeister, and H. Graener, “Polarization dependence of the permanent deformation of silver nanoparticles in glass by ultrashort laser pulses,” Eur. Phys. J. D 16(1), 237–240 (2001). [CrossRef]
Nanoclusters in glasses
Y. Watanabe, G. Namikawa, T. Onuki, K. Nishio, and T. Tsuchiya, “Photosensitivity in phosphate glass doped with Ag+ upon exposure to near-ultraviolet femtosecond laser pulses,” Appl. Phys. Lett. 78(15), 2125–2127 (2001). [CrossRef]
W. Zheng, T. Kurobori, Y. Miyamoto, H. Nanto, and T. Yamamoto, “Formation and assignment of silver defect centres in phosphate glass induced by femtosecond laser pulses,” Radiat. Meas. 1–4, (2011), doi:. [CrossRef]
M. Bellec, A. Royon, B. Bousquet, K. Bourhis, M. Treguer, T. Cardinal, M. Richardson, and L. Canioni, “Beat the diffraction limit in 3D direct laser writing in photosensitive glass,” Opt. Express 17(12), 10304–10318 (2009). [CrossRef] [PubMed]
A. Royon, K. Bourhis, M. Bellec, G. Papon, B. Bousquet, Y. Deshayes, T. Cardinal, and L. Canioni, “Silver clusters embedded in glass as a perennial high capacity optical recording medium,” Adv. Mater. (Deerfield Beach Fla.) 22(46), 5282–5286 (2010). [CrossRef] [PubMed]
L. Canioni, M. Bellec, A. Royon, B. Bousquet, and T. Cardinal, “Three-dimensional optical data storage using third-harmonic generation in silver zinc phosphate glass,” Opt. Lett. 33(4), 360–362 (2008). [CrossRef] [PubMed]
C. Maurel, T. Cardinal, M. Bellec, L. Canioni, B. Bousquet, M. Treguer, J.-J. Videau, J. Choi, and M. Richardson, “Luminescence properties of silver zinc phosphate glasses following different irradiations,” J. Lumin. 129(12), 1514–1518 (2009). [CrossRef]
M. Bellec, A. Royon, K. Bourhis, J. Choi, B. Bousquet, M. Treguer, T. Cardinal, J.-J. Videau, M. Richardson, and L. Canioni, “3D patterning at the nanoscale of fluorescent emitters in glass,” J. Phys. Chem. C 114(37), 15584–15588 (2010). [CrossRef]
Y. Watanabe, G. Namikawa, T. Onuki, K. Nishio, and T. Tsuchiya, “Photosensitivity in phosphate glass doped with Ag+ upon exposure to near-ultraviolet femtosecond laser pulses,” Appl. Phys. Lett. 78(15), 2125–2127 (2001). [CrossRef]
W. Zheng, T. Kurobori, Y. Miyamoto, H. Nanto, and T. Yamamoto, “Formation and assignment of silver defect centres in phosphate glass induced by femtosecond laser pulses,” Radiat. Meas. 1–4, (2011), doi:. [CrossRef]
M. Bellec, A. Royon, B. Bousquet, K. Bourhis, M. Treguer, T. Cardinal, M. Richardson, and L. Canioni, “Beat the diffraction limit in 3D direct laser writing in photosensitive glass,” Opt. Express 17(12), 10304–10318 (2009). [CrossRef] [PubMed]
A. Royon, K. Bourhis, M. Bellec, G. Papon, B. Bousquet, Y. Deshayes, T. Cardinal, and L. Canioni, “Silver clusters embedded in glass as a perennial high capacity optical recording medium,” Adv. Mater. (Deerfield Beach Fla.) 22(46), 5282–5286 (2010). [CrossRef] [PubMed]
L. Canioni, M. Bellec, A. Royon, B. Bousquet, and T. Cardinal, “Three-dimensional optical data storage using third-harmonic generation in silver zinc phosphate glass,” Opt. Lett. 33(4), 360–362 (2008). [CrossRef] [PubMed]
C. Maurel, T. Cardinal, M. Bellec, L. Canioni, B. Bousquet, M. Treguer, J.-J. Videau, J. Choi, and M. Richardson, “Luminescence properties of silver zinc phosphate glasses following different irradiations,” J. Lumin. 129(12), 1514–1518 (2009). [CrossRef]
M. Bellec, A. Royon, K. Bourhis, J. Choi, B. Bousquet, M. Treguer, T. Cardinal, J.-J. Videau, M. Richardson, and L. Canioni, “3D patterning at the nanoscale of fluorescent emitters in glass,” J. Phys. Chem. C 114(37), 15584–15588 (2010). [CrossRef]
M. Bellec, A. Royon, K. Bourhis, J. Choi, B. Bousquet, M. Treguer, T. Cardinal, J.-J. Videau, M. Richardson, and L. Canioni, “3D patterning at the nanoscale of fluorescent emitters in glass,” J. Phys. Chem. C 114(37), 15584–15588 (2010). [CrossRef]
Y. Watanabe, G. Namikawa, T. Onuki, K. Nishio, and T. Tsuchiya, “Photosensitivity in phosphate glass doped with Ag+ upon exposure to near-ultraviolet femtosecond laser pulses,” Appl. Phys. Lett. 78(15), 2125–2127 (2001). [CrossRef]
W. Zheng, T. Kurobori, Y. Miyamoto, H. Nanto, and T. Yamamoto, “Formation and assignment of silver defect centres in phosphate glass induced by femtosecond laser pulses,” Radiat. Meas. 1–4, (2011), doi:. [CrossRef]
Y. Dai, X. Hu, C. Wang, D. Chen, X. Jiang, C. Zhu, B. Yu, and J. Qiu, “Fluorescent Ag nanoclusters in glass induced by an infrared femtosecond laser,” Chem. Phys. Lett. 439(1-3), 81–84 (2007). [CrossRef]
M. Bellec, A. Royon, B. Bousquet, K. Bourhis, M. Treguer, T. Cardinal, M. Richardson, and L. Canioni, “Beat the diffraction limit in 3D direct laser writing in photosensitive glass,” Opt. Express 17(12), 10304–10318 (2009). [CrossRef] [PubMed]
A. Royon, K. Bourhis, M. Bellec, G. Papon, B. Bousquet, Y. Deshayes, T. Cardinal, and L. Canioni, “Silver clusters embedded in glass as a perennial high capacity optical recording medium,” Adv. Mater. (Deerfield Beach Fla.) 22(46), 5282–5286 (2010). [CrossRef] [PubMed]
L. Canioni, M. Bellec, A. Royon, B. Bousquet, and T. Cardinal, “Three-dimensional optical data storage using third-harmonic generation in silver zinc phosphate glass,” Opt. Lett. 33(4), 360–362 (2008). [CrossRef] [PubMed]
C. Maurel, T. Cardinal, M. Bellec, L. Canioni, B. Bousquet, M. Treguer, J.-J. Videau, J. Choi, and M. Richardson, “Luminescence properties of silver zinc phosphate glasses following different irradiations,” J. Lumin. 129(12), 1514–1518 (2009). [CrossRef]
M. Bellec, A. Royon, K. Bourhis, J. Choi, B. Bousquet, M. Treguer, T. Cardinal, J.-J. Videau, M. Richardson, and L. Canioni, “3D patterning at the nanoscale of fluorescent emitters in glass,” J. Phys. Chem. C 114(37), 15584–15588 (2010). [CrossRef]
M. Bellec, A. Royon, B. Bousquet, K. Bourhis, M. Treguer, T. Cardinal, M. Richardson, and L. Canioni, “Beat the diffraction limit in 3D direct laser writing in photosensitive glass,” Opt. Express 17(12), 10304–10318 (2009). [CrossRef] [PubMed]
C. Maurel, T. Cardinal, M. Bellec, L. Canioni, B. Bousquet, M. Treguer, J.-J. Videau, J. Choi, and M. Richardson, “Luminescence properties of silver zinc phosphate glasses following different irradiations,” J. Lumin. 129(12), 1514–1518 (2009). [CrossRef]
J. Qiu, X. Jiang, C. Zhu, H. Inouye, J. Si, and K. Hirao, “Optical properties of structurally modified glasses doped with gold ions,” Opt. Lett. 29(4), 370–372 (2004). [CrossRef] [PubMed]
A. Royon, K. Bourhis, M. Bellec, G. Papon, B. Bousquet, Y. Deshayes, T. Cardinal, and L. Canioni, “Silver clusters embedded in glass as a perennial high capacity optical recording medium,” Adv. Mater. (Deerfield Beach Fla.) 22(46), 5282–5286 (2010). [CrossRef] [PubMed]
Y. Dai, X. Hu, C. Wang, D. Chen, X. Jiang, C. Zhu, B. Yu, and J. Qiu, “Fluorescent Ag nanoclusters in glass induced by an infrared femtosecond laser,” Chem. Phys. Lett. 439(1-3), 81–84 (2007). [CrossRef]
M. Bellec, A. Royon, K. Bourhis, J. Choi, B. Bousquet, M. Treguer, T. Cardinal, J.-J. Videau, M. Richardson, and L. Canioni, “3D patterning at the nanoscale of fluorescent emitters in glass,” J. Phys. Chem. C 114(37), 15584–15588 (2010). [CrossRef]
Nanoclusters in zeolite crystals and in polymers
G. De Cremer, Y. Antoku, M. B. J. Roeffaers, M. Sliwa, J. Van Noyen, S. Smout, J. Hofkens, D. E. De Vos, B. F. Sels, and T. Vosch, “Photoactivation of silver-exchanged zeolite A,” Angew. Chem. Int. Ed. Engl. 47(15), 2813–2816 (2008). [CrossRef] [PubMed]
G. De Cremer, E. Coutiño-Gonzalez, M. B. J. Roeffaers, B. Moens, J. Ollevier, M. Van der Auweraer, R. Schoonheydt, P. A. Jacobs, F. C. De Schryver, J. Hofkens, D. E. De Vos, B. F. Sels, and T. Vosch, “Characterization of fluorescence in heat-treated silver-exchanged zeolites,” J. Am. Chem. Soc. 131(8), 3049–3056 (2009). [CrossRef] [PubMed]
G. De Cremer, E. Coutiño-Gonzalez, M. B. J. Roeffaers, D. E. De Vos, J. Hofkens, T. Vosch, and B. F. Sels, “In situ observation of the emission characteristics of zeolite-hosted silver species during heat treatment,” ChemPhysChem 11(8), 1627–1631 (2010). [PubMed]
T. Gleitsmann, B. Stegemann, and T. M. Bernhardt, “Femtosecond-laser-activated fluorescence from silver oxide nanoparticles,” Appl. Phys. Lett. 84(20), 4050–4052 (2004). [CrossRef]
T. Gleitsmann, B. Stegemann, and T. M. Bernhardt, “Femtosecond-laser-activated fluorescence from silver oxide nanoparticles,” Appl. Phys. Lett. 84(20), 4050–4052 (2004). [CrossRef]
T. Gleitsmann, T. M. Bernhardt, and L. Wöste, “Luminescence properties of femtosecond-laser-activated silver oxide nanoparticles embedded in a biopolymer matrix,” Appl. Phys., A Mater. Sci. Process. 82(1), 125–130 (2006). [CrossRef]
5.3 Laser-activated phase transitions into nanoparticles
T. Gleitsmann, T. M. Bernhardt, and L. Wöste, “Luminescence properties of femtosecond-laser-activated silver oxide nanoparticles embedded in a biopolymer matrix,” Appl. Phys., A Mater. Sci. Process. 82(1), 125–130 (2006). [CrossRef]
Laser-induced metallic nanoparticles
M. Bellec, A. Royon, B. Bousquet, K. Bourhis, M. Treguer, T. Cardinal, M. Richardson, and L. Canioni, “Beat the diffraction limit in 3D direct laser writing in photosensitive glass,” Opt. Express 17(12), 10304–10318 (2009). [CrossRef] [PubMed]
S. Lee, K.-S. Jang, J.-H. Shin, M.-T. Trinh, K.-S. Lim, I.-B. Sohn, Y.-C. Noh, J. Lee, and E. Kim, “Spectral change in silver-doped sodium-borate glass by using femtosecond laser irradiation,” J. Korean Phys. Soc. 52(5), 1665–1668 (2008). [CrossRef]
Q.-Z. Zhao, J.-R. Qiu, X.-W. Jiang, C.-J. Zhao, and C.-S. Zhu, “Controllable precipitation and dissolution of silver nanoparticles in ultrafast laser pulses irradiated Ag+-doped phosphate glass,” Opt. Express 12(17), 4035–4040 (2004). [CrossRef] [PubMed]
Y. Cheng, K. Sugioka, M. Masuda, K. Shihoyama, K. Toyoda, and K. Midorikawa, “Optical gratings embedded in photosensitive glass by photochemical reaction using a femtosecond laser,” Opt. Express 11(15), 1809–1816 (2003). [CrossRef] [PubMed]
Y. Cheng, K. Sugioka, K. Midorikawa, M. Masuda, K. Toyoda, M. Kawachi, and K. Shihoyama, “Three-dimensional micro-optical components embedded in photosensitive glass by a femtosecond laser,” Opt. Lett. 28(13), 1144–1146 (2003). [CrossRef] [PubMed]
Y. Dai, J. Qiu, X. Hu, L. Yang, X. Jiang, C. Zhu, and B. Yu, “Effect of cerium oxide on the precipitation of silver nanoparticles in femtosecond laser irradiated silicate glass,” Appl. Phys. B 84(3), 501–505 (2006). [CrossRef]
S. Qu, J. Qiu, C. Zhao, X. Jiang, H. Zeng, C. Zhu, and K. Hirao, “Metal nanoparticles precipitation in periodic arrays in Au2O-doped glass by two interfered femtosecond laser pulses,” Appl. Phys. Lett. 84(12), 2046–2048 (2004). [CrossRef]
J. Qiu, X. Jiang, C. Zhu, H. Inouye, J. Si, and K. Hirao, “Optical properties of structurally modified glasses doped with gold ions,” Opt. Lett. 29(4), 370–372 (2004). [CrossRef] [PubMed]
J. Qiu, X. Jiang, C. Zhu, M. Shirai, J. Si, N. Jiang, and K. Hirao, “Manipulation of gold nanoparticles inside transparent materials,” Angew. Chem. Int. Ed. Engl. 43(17), 2230–2234 (2004). [CrossRef] [PubMed]
X. Hu, Q. Zhao, X. Jiang, C. Zhu, and J. Qiu, “Space-selective co-precipitation of silver and gold nanoparticles in femtosecond laser pulses irradiated Ag+, Au3+ co-doped silicate glass,” Solid State Commun. 138(1), 43–46 (2006). [CrossRef]
J. Qiu, X. Jiang, C. Zhu, M. Shirai, J. Si, N. Jiang, and K. Hirao, “Manipulation of gold nanoparticles inside transparent materials,” Angew. Chem. Int. Ed. Engl. 43(17), 2230–2234 (2004). [CrossRef] [PubMed]
Y. Cheng, K. Sugioka, M. Masuda, K. Shihoyama, K. Toyoda, and K. Midorikawa, “Optical gratings embedded in photosensitive glass by photochemical reaction using a femtosecond laser,” Opt. Express 11(15), 1809–1816 (2003). [CrossRef] [PubMed]
J. Qiu, M. Shirai, T. Nakaya, J. Si, X. Jiang, C. Zhu, and K. Hirao, “Space-selective precipitation of metal nanoparticles inside glasses,” Appl. Phys. Lett. 81(16), 3040–3042 (2002). [CrossRef]
H. Zeng, J. Qiu, X. Jiang, C. Zhu, and F. Gan, “Effect of Al2O3 on the precipitation of Ag nanoparticles in silicate glasses,” J. Cryst. Growth 262(1-4), 255–258 (2004). [CrossRef]
J. Qiu, X. Jiang, C. Zhu, H. Inouye, J. Si, and K. Hirao, “Optical properties of structurally modified glasses doped with gold ions,” Opt. Lett. 29(4), 370–372 (2004). [CrossRef] [PubMed]
J. Qiu, M. Shirai, T. Nakaya, J. Si, X. Jiang, C. Zhu, and K. Hirao, “Space-selective precipitation of metal nanoparticles inside glasses,” Appl. Phys. Lett. 81(16), 3040–3042 (2002). [CrossRef]
X. Hu, Q. Zhao, X. Jiang, C. Zhu, and J. Qiu, “Space-selective co-precipitation of silver and gold nanoparticles in femtosecond laser pulses irradiated Ag+, Au3+ co-doped silicate glass,” Solid State Commun. 138(1), 43–46 (2006). [CrossRef]
X. Hu, Q. Zhao, X. Jiang, C. Zhu, and J. Qiu, “Space-selective co-precipitation of silver and gold nanoparticles in femtosecond laser pulses irradiated Ag+, Au3+ co-doped silicate glass,” Solid State Commun. 138(1), 43–46 (2006). [CrossRef]
Y. Dai, G. Yu, M. He, H. Ma, X. Yan, and G. Ma, “High repetition rate femtosecond laser irradiation-induced elements redistribution in Ag-doped glass,” Appl. Phys. B 103(3), 663–667 (2011). [CrossRef]
T. Gleitsmann, T. M. Bernhardt, and L. Wöste, “Luminescence properties of femtosecond-laser-activated silver oxide nanoparticles embedded in a biopolymer matrix,” Appl. Phys., A Mater. Sci. Process. 82(1), 125–130 (2006). [CrossRef]
Laser-modified nanoparticles
M. Kaempfe, G. Seifert, K.-J. Berg, H. Hofmeister, and H. Graener, “Polarization dependence of the permanent deformation of silver nanoparticles in glass by ultrashort laser pulses,” Eur. Phys. J. D 16(1), 237–240 (2001). [CrossRef]
A. Stalmashonak, G. Seifert, and H. Graener, “Optical three-dimensional shape analysis of metallic nanoparticles after laser-induced deformation,” Opt. Lett. 32(21), 3215 (2007). [CrossRef] [PubMed]
G. Seifert, A. Stalmashonak, H. Hofmeister, J. Haug, and M. Dubiel, “Laser-induced, polarization dependent shape transformation of Au/Ag nanoparticles in glass,” Nanoscale Res. Lett. 4(11), 1380–1383 (2009). [CrossRef] [PubMed]
A. Stalmashonak, G. Seifert, A. A. Unal, U. Skrzypczak, A. Podlipensky, A. Abdolvand, and H. Graener, “Towards the production of micro-polarizers by irradiation of composite glasses with silver nanoparticles,” Appl. Opt. 48(25), F37–F43 (2009). [CrossRef]
A. Podlipensky, J. Lange, G. Seifert, H. Graener, and I. Cravetchi, “Second-harmonic generation from ellipsoidal silver nanoparticles embedded in silica glass,” Opt. Lett. 28(9), 716–718 (2003). [CrossRef] [PubMed]
A. Unal, A. Stalmashonak, G. Seifert, and H. Graener, “Ultrafast dynamics of silver nanoparticle shape transformation studied by femtosecond pulse-pair irradiation,” Phys. Rev. B 79(11), 115411 (2009). [CrossRef]
A. Stalmashonak, G. Seifert, A. A. Unal, U. Skrzypczak, A. Podlipensky, A. Abdolvand, and H. Graener, “Towards the production of micro-polarizers by irradiation of composite glasses with silver nanoparticles,” Appl. Opt. 48(25), F37–F43 (2009). [CrossRef]
G. Seifert, M. Kaempfe, K.-J. Berg, and H. Graener, “Production of dichroitic diffraction gratings in glasses containing silver nanoparticles via particle deformation with ultrashort laser pulses,” Appl. Phys. B 73(4), 355–359 (2001). [CrossRef]
A. Podlipensky, A. Abdolvand, G. Seifert, and H. Graener, “Femtosecond laser assisted production of dichroitic 3D structures in composite glass containing Ag nanoparticles,” Appl. Phys., A Mater. Sci. Process. 80(8), 1647–1652 (2005). [CrossRef]
A. Stalmashonak, A. Podlipensky, G. Seifert, and H. Graener, “Intensity-driven, laser induced transformation of Ag nanospheres to anisotropic shapes,” Appl. Phys. B 94(3), 459–465 (2009). [CrossRef]
A. Stalmashonak, A. A. Unal, H. Graener, and G. Seifert, “Effects of temperature on laser-induced shape modification of silver nanoparticles embedded in glass,” J. Phys. Chem. C 113(28), 12028–12032 (2009). [CrossRef]
P. Zijlstra, J. W. M. Chon, and M. Gu, “Five-dimensional optical recording mediated by surface plasmons in gold nanorods,” Nature 459(7245), 410–413 (2009). [CrossRef] [PubMed]
Laser-activated phase transition into dielectric nanocrystallites
K. Miura, J. Qiu, T. Mitsuyu, and K. Hirao, “Space-selective growth of frequency-conversion crystals in glasses with ultrashort infrared laser pulses,” Opt. Lett. 25(6), 408–410 (2000). [CrossRef] [PubMed]
M. Masuda, K. Sugioka, Y. Cheng, N. Aoki, M. Kawachi, K. Shihoyama, K. Toyoda, H. Helvajian, and K. Midorikawa, “3-D microstructuring inside photosensitive glass by femtosecond laser excitation,” Appl. Phys., A Mater. Sci. Process. 76(5), 857–860 (2003). [CrossRef]
B. Fisette, F. Busque, J.-Y. Degorce, and M. Meunier, “Three-dimensional crystallization inside photosensitive glasses by focused femtosecond laser,” Appl. Phys. Lett. 88(9), 091104 (2006). [CrossRef]
Y. Liu, B. Zhu, Y. Dai, X. Qiao, S. Ye, Y. Teng, Q. Guo, H. Ma, X. Fan, and J. Qiu, “Femtosecond laser writing of Er3+-doped CaF2 crystalline patterns in glass,” Opt. Lett. 34(21), 3433–3435 (2009). [CrossRef] [PubMed]
Y. Dai, B. Zhu, J. Qiu, H. Ma, B. Lu, and B. Yu, “Space-selective precipitation of functional crystals in glass by using a high repetition rate femtosecond laser,” Chem. Phys. Lett. 443(4-6), 253–257 (2007). [CrossRef]
C. B. Schaffer, J. F. Garcia, and E. Mazur, “Bulk heating of transparent materials using a high-repetition-rate femtosecond laser,” Appl. Phys., A Mater. Sci. Process. 76(3), 351–354 (2003). [CrossRef]
S. Kanehira, K. Miura, and K. Hirao, “Ion exchange in glass using femtosecond laser irradiation,” Appl. Phys. Lett. 93(2), 023112 (2008). [CrossRef]
M. Masuda, K. Sugioka, Y. Cheng, N. Aoki, M. Kawachi, K. Shihoyama, K. Toyoda, H. Helvajian, and K. Midorikawa, “3-D microstructuring inside photosensitive glass by femtosecond laser excitation,” Appl. Phys., A Mater. Sci. Process. 76(5), 857–860 (2003). [CrossRef]
B. Fisette, F. Busque, J.-Y. Degorce, and M. Meunier, “Three-dimensional crystallization inside photosensitive glasses by focused femtosecond laser,” Appl. Phys. Lett. 88(9), 091104 (2006). [CrossRef]
L. Siiman, J. Lumeau, and L. B. Glebov, “Nonlinear photoionization and laser-induced damage in silicate glasses by infrared ultrashort laser pulses,” Appl. Phys. B 96(1), 127–134 (2009). [CrossRef]
K. Miura, J. Qiu, T. Mitsuyu, and K. Hirao, “Space-selective growth of frequency-conversion crystals in glasses with ultrashort infrared laser pulses,” Opt. Lett. 25(6), 408–410 (2000). [CrossRef] [PubMed]
Y. Liu, B. Zhu, Y. Dai, X. Qiao, S. Ye, Y. Teng, Q. Guo, H. Ma, X. Fan, and J. Qiu, “Femtosecond laser writing of Er3+-doped CaF2 crystalline patterns in glass,” Opt. Lett. 34(21), 3433–3435 (2009). [CrossRef] [PubMed]
Y. Dai, B. Zhu, J. Qiu, H. Ma, B. Lu, and B. Yu, “Space-selective precipitation of functional crystals in glass by using a high repetition rate femtosecond laser,” Chem. Phys. Lett. 443(4-6), 253–257 (2007). [CrossRef]
5.4 Discussion
M. Martin, J. J. Videau, L. Canioni, F. Adamietz, L. Sarger, and G. Le Flem, “Planar waveguides formed by Ag+-Na+ ion exchange in nonlinear optical glasses: diffusion and optical properties,” Appl. Opt. 39(3), 435–440 (2000). [CrossRef] [PubMed]
6. Optical property changes, photochemical reactions and applications
| Optical property change | Photochemical reaction | Application | Reference |
|---|---|---|---|
| Linear refractive index | Laser-induced NPs Laser-modified NPs Nanocrystallites | Optical grating, optical switching Optical grating, micro-polarizer, filter, display, optical recording Waveguide, optical recording, volume holography | [31 Y. Cheng, K. Sugioka, M. Masuda, K. Shihoyama, K. Toyoda, and K. Midorikawa, “Optical gratings embedded in photosensitive glass by photochemical reaction using a femtosecond laser,” Opt. Express 11(15), 1809–1816 (2003). [CrossRef] [PubMed] A. Podlipensky, A. Abdolvand, G. Seifert, and H. Graener, “Femtosecond laser assisted production of dichroitic 3D structures in composite glass containing Ag nanoparticles,” Appl. Phys., A Mater. Sci. Process. 80(8), 1647–1652 (2005). [CrossRef] B. Fisette, F. Busque, J.-Y. Degorce, and M. Meunier, “Three-dimensional crystallization inside photosensitive glasses by focused femtosecond laser,” Appl. Phys. Lett. 88(9), 091104 (2006). [CrossRef] Y. Liu, B. Zhu, Y. Dai, X. Qiao, S. Ye, Y. Teng, Q. Guo, H. Ma, X. Fan, and J. Qiu, “Femtosecond laser writing of Er3+-doped CaF2 crystalline patterns in glass,” Opt. Lett. 34(21), 3433–3435 (2009). [CrossRef] [PubMed] |
| Plasmon resonance (absorption) | Laser-modified NPs | Optical recording | [15 A. Podlipensky, A. Abdolvand, G. Seifert, and H. Graener, “Femtosecond laser assisted production of dichroitic 3D structures in composite glass containing Ag nanoparticles,” Appl. Phys., A Mater. Sci. Process. 80(8), 1647–1652 (2005). [CrossRef] P. Zijlstra, J. W. M. Chon, and M. Gu, “Five-dimensional optical recording mediated by surface plasmons in gold nanorods,” Nature 459(7245), 410–413 (2009). [CrossRef] [PubMed] |
| Luminescence | Nanoclusters | Optical recording | [18,19 A. Royon, K. Bourhis, M. Bellec, G. Papon, B. Bousquet, Y. Deshayes, T. Cardinal, and L. Canioni, “Silver clusters embedded in glass as a perennial high capacity optical recording medium,” Adv. Mater. (Deerfield Beach Fla.) 22(46), 5282–5286 (2010). [CrossRef] [PubMed] |
| Second-order susceptibility χ(2) | Nanocrystallites Nanoclusters | Frequency conversion | [20 K. Miura, J. Qiu, T. Mitsuyu, and K. Hirao, “Space-selective growth of frequency-conversion crystals in glasses with ultrashort infrared laser pulses,” Opt. Lett. 25(6), 408–410 (2000). [CrossRef] [PubMed] Y. Dai, B. Zhu, J. Qiu, H. Ma, B. Lu, and B. Yu, “Space-selective precipitation of functional crystals in glass by using a high repetition rate femtosecond laser,” Chem. Phys. Lett. 443(4-6), 253–257 (2007). [CrossRef] J. Choi, M. Bellec, K. Bourhis, A. Royon, L. Canioni, T. Cardinal, E. Fargin, V. Rodriguez, M. Dussauze, A. Delestre, and M. Richardson, “Femtosecond laser induced micro-structured silver containing glass as an engineered nonlinear optical material,” in Advances in Optical Materials, OSA Technical Digest (CD) (Optical Society of America, 2009), paper AWB3. A. Royon, M. Bellec, J. Y. Choi, K. Bourhis, T. Cardinal, M. Richardson, and L. Canioni, “Second-harmonic generation by direct-laser-induced-poling in a femto-photo-luminescent glass,” in Bragg Gratings, Photosensitivity, and Poling in Glass Waveguides, OSA Technical Digest (CD) (Optical Society of America, 2010), paper BThD2. |
| Third-order susceptibility χ(3) | Nanoclusters | Optical recording | [23 L. Canioni, M. Bellec, A. Royon, B. Bousquet, and T. Cardinal, “Three-dimensional optical data storage using third-harmonic generation in silver zinc phosphate glass,” Opt. Lett. 33(4), 360–362 (2008). [CrossRef] [PubMed] |
| Preferential dissolution | Nanocrystallites | Micro-fluidics, integrated micro-optics | [27,32 M. Masuda, K. Sugioka, Y. Cheng, N. Aoki, M. Kawachi, K. Shihoyama, K. Toyoda, H. Helvajian, and K. Midorikawa, “3-D microstructuring inside photosensitive glass by femtosecond laser excitation,” Appl. Phys., A Mater. Sci. Process. 76(5), 857–860 (2003). [CrossRef] Y. Cheng, K. Sugioka, K. Midorikawa, M. Masuda, K. Toyoda, M. Kawachi, and K. Shihoyama, “Three-dimensional micro-optical components embedded in photosensitive glass by a femtosecond laser,” Opt. Lett. 28(13), 1144–1146 (2003). [CrossRef] [PubMed] |
7. Conclusion
Acknowledgments
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V. R. Bhardwaj, E. Simova, P. P. Rajeev, C. Hnatovsky, R. S. Taylor, D. M. Rayner, and P. B. Corkum, “Optically produced arrays of planar nanostructures inside fused silica,” Phys. Rev. Lett. 96(5), 057404 (2006). [CrossRef] [PubMed] | |
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S. Qu, J. Qiu, C. Zhao, X. Jiang, H. Zeng, C. Zhu, and K. Hirao, “Metal nanoparticles precipitation in periodic arrays in Au2O-doped glass by two interfered femtosecond laser pulses,” Appl. Phys. Lett. 84(12), 2046–2048 (2004). [CrossRef] | |
J. Qiu, X. Jiang, C. Zhu, M. Shirai, J. Si, N. Jiang, and K. Hirao, “Manipulation of gold nanoparticles inside transparent materials,” Angew. Chem. Int. Ed. Engl. 43(17), 2230–2234 (2004). [CrossRef] [PubMed] | |
X. Hu, Q. Zhao, X. Jiang, C. Zhu, and J. Qiu, “Space-selective co-precipitation of silver and gold nanoparticles in femtosecond laser pulses irradiated Ag+, Au3+ co-doped silicate glass,” Solid State Commun. 138(1), 43–46 (2006). [CrossRef] | |
H. Zeng, J. Qiu, X. Jiang, C. Zhu, and F. Gan, “Effect of Al2O3 on the precipitation of Ag nanoparticles in silicate glasses,” J. Cryst. Growth 262(1-4), 255–258 (2004). [CrossRef] | |
A. Stalmashonak, G. Seifert, and H. Graener, “Optical three-dimensional shape analysis of metallic nanoparticles after laser-induced deformation,” Opt. Lett. 32(21), 3215 (2007). [CrossRef] [PubMed] | |
A. Stalmashonak, G. Seifert, and H. Graener, “Spectral range extension of laser-induced dichroism in composite glass with silver nanoparticles,” J. Opt. A, Pure Appl. Opt. 11(6), 065001 (2009). [CrossRef] | |
G. Seifert, A. Stalmashonak, H. Hofmeister, J. Haug, and M. Dubiel, “Laser-induced, polarization dependent shape transformation of Au/Ag nanoparticles in glass,” Nanoscale Res. Lett. 4(11), 1380–1383 (2009). [CrossRef] [PubMed] | |
A. Stalmashonak, G. Seifert, A. A. Unal, U. Skrzypczak, A. Podlipensky, A. Abdolvand, and H. Graener, “Towards the production of micro-polarizers by irradiation of composite glasses with silver nanoparticles,” Appl. Opt. 48(25), F37–F43 (2009). [CrossRef] | |
M. Kaempfe, T. Rainer, K.-J. Berg, G. Seifert, and H. Graener, “Ultrashort laser pulse induced deformation of silver nanoparticles in glass,” Appl. Phys. Lett. 74(9), 1200–1202 (1999). [CrossRef] | |
M. Kaempfe, H. Hofmeister, S. Hopfe, G. Seifert, and H. Graener, “Morphological changes of silver nanoparticle distributions in glass induced by ultrashort laser pulses,” J. Phys. Chem. B 104(50), 11847–11852 (2000). [CrossRef] | |
G. Seifert, M. Kaempfe, K.-J. Berg, and H. Graener, “Production of dichroitic diffraction gratings in glasses containing silver nanoparticles via particle deformation with ultrashort laser pulses,” Appl. Phys. B 73(4), 355–359 (2001). [CrossRef] | |
A. Stalmashonak, A. A. Unal, H. Graener, and G. Seifert, “Effects of temperature on laser-induced shape modification of silver nanoparticles embedded in glass,” J. Phys. Chem. C 113(28), 12028–12032 (2009). [CrossRef] | |
B. Fisette, F. Busque, J.-Y. Degorce, and M. Meunier, “Three-dimensional crystallization inside photosensitive glasses by focused femtosecond laser,” Appl. Phys. Lett. 88(9), 091104 (2006). [CrossRef] | |
Y. Liu, B. Zhu, Y. Dai, X. Qiao, S. Ye, Y. Teng, Q. Guo, H. Ma, X. Fan, and J. Qiu, “Femtosecond laser writing of Er3+-doped CaF2 crystalline patterns in glass,” Opt. Lett. 34(21), 3433–3435 (2009). [CrossRef] [PubMed] | |
L. Siiman, J. Lumeau, and L. B. Glebov, “Nonlinear photoionization and laser-induced damage in silicate glasses by infrared ultrashort laser pulses,” Appl. Phys. B 96(1), 127–134 (2009). [CrossRef] | |
Y. Yonesaki, K. Miura, R. Araki, K. Fujita, and K. Hirao, “Space-selective precipitation of non-linear optical crystals inside silicate glasses using near-infrared femtosecond laser,” J. Non-Cryst. Sol. 351, 885–892 (2005). |
OCIS Codes
(140.3390) Lasers and laser optics : Laser materials processing
(140.3450) Lasers and laser optics : Laser-induced chemistry
(160.4670) Materials : Optical materials
(320.2250) Ultrafast optics : Femtosecond phenomena
ToC Category:
Laser Materials Processing
History
Original Manuscript: July 13, 2011
Revised Manuscript: July 28, 2011
Manuscript Accepted: July 28, 2011
Published: August 8, 2011
Virtual Issues
Femtosecond Direct Laser Writing and Structuring of Materials (2011) Optical Materials Express
(2011) Advances in Optics and Photonics
Citation
Arnaud Royon, Yannick Petit, Gautier Papon, Martin Richardson, and Lionel Canioni, "Femtosecond laser induced photochemistry in materials tailored with photosensitive agents [Invited]," Opt. Mater. Express 1, 866-882 (2011)
http://www.opticsinfobase.org/ome/abstract.cfm?URI=ome-1-5-866
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References
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