It is shown that for laser technologies it was necessary to create a new branch of physics: Relaxed Optics (synthesis of methods of the physical optics, quantum electronics, physical chemistry, physics of irreversible phenomena in unitary system). It is allowed to explain complex chain processes of interaction light and matter. Possible applications of Relaxed Optical methods for the modeling of the laser-induced processes phenomena, including laser implantation (surface and subsurface processes), laser-induced optical breakdown (volume processes) and laser annealing of radiation and other defects in solid, are discussed. Perspectives of using these methods for the creation of new laser technologies, including creation new types of optoelectronic devices (heterostructures, diffraction lattices, etc.), resolution the problems of metallurgy, material science, painting, architecture and a building, are analyzed.
References
[1]
Trokhimchuck, P. (2016) Relaxed Optics: Realities and Perspectives. Lambert Academic Publishing, Saarbrukken.
[2]
Shen, Y.R. (1984) The Principles of Nonlinear Optics. John Wiley & Sons, New York.
[3]
Trokhimchuck, P. (2013) Nonlinear and Relaxed Optical Processes: Problems of Interactions. Vezha-Print, Lutsk.
[4]
Veyko, V.P., Libenson, M.N., Chervyakov, G.G. and Yakovlev, E.B. (2008) Interaction of Laser Radiation with Matter. Power Optics. Phyzmatlit, Moscow. (In Russian)
[5]
Newton, I. (1704) Opticks: Or, a Treatise of the Reflexions, Refractions, Inflexions and Colours of Light. Also to Treatises of the Species and Magnitude of Curvilinear Figures. Printed for the Royal Society. https://doi.org/10.5479/sil.302475.39088000644674
[6]
Trokhimchuck, P. (2011) Foundations of Relaxed Optics. Vezha-Print, Lutsk.
[7]
Trokhimchuck, P. (2020) Optical Breakdown in Matter: Retrospective and Perspective. In: Advanced in Engineering Technology, Vol. 3, Ch. 7, AkiNik Publications, New Delhi, 101-132.
[8]
Trokhimchuck, P. (2020) Role Physical-Chemical Processes in the Generation of Laser-Induced Structures. In: Research Trends in Chemical Sciences, Vol. 11, Ch. 6, AkiNik Publications, New Delhi, 109-140.
[9]
Trokhimchuck, P. (2020) Relaxed Optics: Modeling and Discussions. Lambert Academic Publishing, Saarbrukken.
[10]
Haken, H. (2004) Synergetics: Introduction and Advanced Topics. Springer, Berlin. https://doi.org/10.1007/978-3-662-10184-1
[11]
Lax, M. (1960) Cascade Capture of Electrons in Solids. Physical Review, 119, 1502-1523. https://doi.org/10.1103/PhysRev.119.1502
[12]
Lax, M. (1952) Frank-Condon Principle and Its Application to Crystals. The Journal of Chemical Physics, 20, 1752-1763. https://doi.org/10.1063/1.1700283
[13]
Medvid, A. (2010) Nano-Cones Formed on a Surface of Semiconductors by Laser Radiation: Technology, Model and Properties. In: Lupu, N., Ed., Nanowires Science and Technology, Inech, Vukovar, 61-82. https://doi.org/10.5772/39493
Pedraza, A.J., Guan, Y.F., Fowlkes, J.D., Smith, D.A. and Lowndes, D.H. (2004) Nanostructures Produced by Ultraviolet Laser Irradiation of Silicon. I. Rippled Structures. Journal of Vacuum Science & Technology B, 22, 2823-2835. https://doi.org/10.1116/1.1821575
[16]
Shen, M., Carey, J.E., Crouch, C.H., Kandyla, M., Stone, H.A. and Mazur, E. (2008) High-Density Regular Arrays of Nano-Scale Rods Formed on Silicon Surfaces via Femtosecond Laser Irradiation in Water. Nanoletters, 8, 2087-2091. https://doi.org/10.1021/nl080291q
[17]
Makin, V.S. (2013) Peculiarities of the Formation the Ordered Micro and Nanostructures in Condensed Matter after Laser Excitation of Surface Polaritons Modes. D.Sc. Thesis, State University of Information Technologies, Mechanics and Optics, Saint-Petersburg. (In Russian)
[18]
Tsukamoto, M., Asuka, K., Nakano, N., Hashida, M., Ratto, M., Abe, N. and Fujita, M. (2006) Period Microstructures Produced by Femtosecond Laser Irradiation on Titanium Plate. Vacuum, 80, 1346-1350. https://doi.org/10.1016/j.vacuum.2006.01.016
[19]
Philips, J.C. (1981) Metastable Honeycomb Model of Laser Annealing. Journal of Applied Physics, 52, 7397-7402. https://doi.org/10.1063/1.328729
[20]
Trokhimchuck, P.P. (2007) Radiation Physics of Status Solid. Vezha, Lutsk, 394. (In Ukrainian)
[21]
Trokhimchuck, P. (2021) Thomson-Benard Phenomena and Relaxed Optics. IJARPS, 8, 1-15.
[22]
Rayleygh (1916) On Convective Currents in a Horizontal Layer of Fluid Then the Higher Temperature Is on the Underside. The Philosophers’ Magazine, 32, 529-546.
[23]
Chandrasekar, S. (1961) Hydrodynamic and Hydromagnetic Stability. Dover Publications, New York.
[24]
Sharma, B.S. (1968) Laser-Induced Dielectric Breakdown and Mechanical Damage in Silicate Glasses. Ph.D. Thesis, Simon Fraser University Press, Burnaby.
[25]
Manenkov, А.А. and Prokhorov, А.М. (1986) Laser Destruction of Radiolucent Solid Bodies. Progress of Physical Science, 148, 179-211. (In Russian) https://doi.org/10.3367/UFNr.0148.198601h.0179
[26]
Stuart, B.S., Feit, M.D., Rubenchik, A.M., Shore, B.W. and Perry, M.D. (1995) Laser-Induced Damage in Dielectrics with Nanosecond to Subpicosecond Pulses. Physical Review Letters, 74, 2248-2252. https://doi.org/10.1103/PhysRevLett.74.2248
[27]
Kroll, N. and Watson, K.M. (1972) Theoretical Study of Ionization of Air by Intense Laser Pulses. Physical Review A, 5, 1883-1905. https://doi.org/10.1103/PhysRevA.5.1883
[28]
Minardi, S., Gopal, A., Tatarakis, M., Couairon, A., Tamosăuskas, G., Piskarskas, R., Dubietis, A. and Di Trapani, P. (2008) Time-Resolved Refractive Index and Absorption Mapping of Light-Plasma Filaments in Water. Optics Letters, 33, 86-88. https://doi.org/10.1364/OL.33.000086
[29]
Okada, T., Tomita, T., Matsuo, S., Hashimoto, S., Ishida, Y., Kiyama, S. and Takahashi, T. (2009) Formation of Periodic Strain Layers Associated with Nanovoids inside a Silicon Carbide Single Crystal Induced by Femtosecond Laser Irradiation. Journal of Applied Physics, 106, Article ID: 054307. https://doi.org/10.1063/1.3211311
[30]
Okada, T., Tomita, T., Matsuo, S., Hashimoto, S., Kashino, R. and Ito, T. (2012) Formation of Nanovoids in Femtosecond Laser Irradiated Single Crystal Silicon Carbide. Material Science Forum, 725, 19-22. https://doi.org/10.4028/www.scientific.net/MSF.725.19
[31]
Yablonovich, E. (1971) Optical Dielectric Strength of Alkali Halide Crystals Obtained by Laser Induced Breakdown. Applied Physics Letters, 19, 495-497. https://doi.org/10.1063/1.1653788
[32]
Berge, L., Skupin, S., Lederer, F., Mejean, G., Yu, J., Kasparian, J., Salmon, E., Wolf, J.P., Rodrigues, M., Wӧste, L., Bourayou, R. and Saurbrey, P. (2004) Multiple Filamentation of Terawatt Laser in Air. Physical Review Letters, 92, Article ID: 225002. https://doi.org/10.1103/PhysRevLett.92.225002
[33]
Wu, J., Zhao, J., Qiao, H., Hu, X. and Yang, Y. (2020) The New Technologies Developed from Laser Shock Processing. Material (Basel), 13, 1453-1456. https://doi.org/10.3390/ma13061453
[34]
Golub, I. (1990) Optical Characteristics of Supercontinuum Generation. Optics Letters, 15, 305-307. https://doi.org/10.1364/OL.15.000305
Bohr, N. (1950) The Passage of Charged Particles through Matter. IL, Moscow. (In Russian)
[37]
Boyd, R.W., Lukishova, S.G. and Shen, Y.-R. (2009) Self-Focusing: Past and Present. Springer Series: Topics in Applied Physics, Vol. 114, Springer, Berlin.
[38]
Rayleygh (1917) On the Pressure Developed in a Liquid during the Collapse of a Spherical Cavity. The London, Edinburgh and Dublin Philosophical Magazine and Journal of Science, 34, 94-97. https://doi.org/10.1080/14786440808635681
[39]
Lauteborn, W. and Kurz, T. (2010) Physics of Bubble Oscillations. Reports on Progress in Physics, 77, Article ID: 106501. https://doi.org/10.1088/0034-4885/73/10/106501
[40]
Khaybullin, I.B. and Smirnov, L.S. (1985) Impulse Annealing of Semiconductors. The State of the Problem and Unresolved Questions (Review). Physics and Technics of Semiconductors, 19, 569-589. (In Russian)
[41]
Bogatyryov, V.A. and Kachurin, G.A. (1977) The Creation Low Resistively n-Layers on InSb with Help the Impulse Laser Irradiation. Physics and Technics of Semiconductors, 11, 100-102. (In Russian).
[42]
Dupliak, I., Li, F.P. and Guang, F. (2019) Micro-Hole Drilling of Stainless Steel Using Short Pulse Laser. Proceedings Third International Conference “Actual Problems of Fundamental Science”, Lutsk, 1-5 June 2019, 42-44.
[43]
Choi, W., Kim, H.Y., Jeon, J.W., Chang, W.S. and Cho, S.-H. (2017) Vibration-Assisted Femtosecond Laser Drilling with Controllable Taper Angles for AMOLED Fine Metal Mask Fabrication. Materials, 10, 212. https://doi.org/10.3390/ma10020212
[44]
Jahnsa, D., Kaszemeikata, T., Muellera, N., Ashkenasia, D., Dietricha, R. and Eichlera, H.J. (2013) Laser Trepanning of Stainless Steel. Physics Procedia, 41, 630-635. https://doi.org/10.1016/j.phpro.2013.03.126
[45]
Leitz, K.H., Redlingshӧfer, B., Reg, Y., Otto, A. and Schmidt, M. (2011) Metal Ablation with Short and Ultrashort Laser Pulses. Physics Procedia, 12, 230-238. https://doi.org/10.1016/j.phpro.2011.03.128