Modeling of Electron and Lattice Temperature Distribution Through Lifetime of Plasma Plume

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Ali Hamza Alwan Al-taee

Abstract

When employing shorter (sub picosecond) laser pulses, in ablation kinetics the features appear which can no longer be described in the context of the conventional thermal model. Meanwhile, the ablation of materials with the aid of ultra-short (sub picosecond) laser pulses is applied for micromechanical processing. Physical mechanisms and theoretical models of laser ablation are discussed. Typical associated phenomena are qualitatively regarded and methods for studying them quantitatively are considered. Calculated results relevant to ablation kinetics for a number of substances are presented and compared with experimental data. Ultra-short laser ablation with two-temperature model was quantitatively investigated. A two-temperature model for the description of transition phenomena in a non-equilibrium electron gas and a lattice under picosecond laser irradiation is proposed. Some characteristics are hard to measure directly at all. That is why the analysis of physical mechanisms involved in the ablation process by ultra-short laser pulses has to be performed on the basis of a theoretical consideration of `indirect' experimental data. For Copper and Nickel metal targets, the two-temperature model calculations explain that the temperature of the electron subsystem increased suddenly and approached a peak value at the end of laser pulse. In addition, the temperature profile of lattice temperature subsystem evolution slowly, and still increasing after the end of laser pulse. A good agreement prevails when a comparison between the present results and published results.

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“Modeling of Electron and Lattice Temperature Distribution Through Lifetime of Plasma Plume” (2014) Journal of Engineering, 20(06), pp. 46–62. doi:10.31026/j.eng.2014.06.04.
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How to Cite

“Modeling of Electron and Lattice Temperature Distribution Through Lifetime of Plasma Plume” (2014) Journal of Engineering, 20(06), pp. 46–62. doi:10.31026/j.eng.2014.06.04.

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References

Al-moosawy, Adil, A., 2002, Modeling of Thermal History of Solid Material Processed by Laser , Ph.D. Thesis, University of Technology, Mech. Dept.,.

Alan Adams, J., and David, F., Rogers., 1973, Computer-Aided Heat Transfer Analysis, McGraw-Hill,.

Anderson, D. A., Tannehill, J. C., and Pletcher, R. H., 1984, Computational Fluid Mechanics and Heat Transfer, McGraw-Hill,.

Bulgakova, M., Nadezhda, M., Igor, Burakov, Meshcherykov, Yuri, P., Stoian, Razvan, Rosenfeld, Arkadi, and Hertel, Ingolf, V., 2007, Theoretical Models and Qualitative Interpretations of Fs Laser Material Processing, JLMN-Journal of Laser Micro/Nanoengineering Vol. 2, No. 1,.

Chimmalgi, A., Grigoropoulos, C., P., and Komvopoulos, K., 2005, Surface Nanostructuring by Nano-femtosecond Laser-assisted Scanning Force Microscopy, Journal of Applied Physics, 97, 104319.

Cheng, Changrui, and Xu, Xianfan, 2005, Mechanisms of Decomposition of Metal during Femtosecond Laser Ablation, Physical Review B, 72, 165415,.

Grojo, D., Hermann, J., Bruneau, S., and Itina, T., 2003, Analyses of Femtosecond Laser Ablation of Ti, Zr and Hf, LP3-FRE 2165 CNRS,Faculté des Sciences de Luminy,Case 917,13288 Marseille Cedex 9,France.

Hermann, J., Benfarah, M., Coustillier, G., Bruneau, S., Axente, E., Guillemoles, J.,- F., Sentis, M., Alloncle, P., Itina, T., 2005, Selective Ablation of Thin Films with Short and Ultrashort Laser Pulses, Applied Surface Science.

Harrach, R. J., Dec. 1977, Analyatic Solutions for Laser Heating and Burn-through of Opaque Slabs, J. Appl. Phys., Vol. 48, pp. 2370-2375.

J.P. Colombier, P. Combis, F. Bonneau, R. Le Harzic, and E. Audouard., 2006, Hydrodynamic Simulations of Metal Ablation by Femtosecond Laser Irradiation, Dept. de Physique Th´eorique et Appliqu´ee ,France.

Korte, F. Adams S., Egbert, A. Fallnich, C. Ostendorf, A., 17July, 2000, Sub- diffraction Limited Structuring of Solid Targets with Femtosecond Laser Pulses, Institute of Applied Physics, Friedrich-Schiller-University Jena, Vol.7, No.2/Optics Express,Jena,Germany.

Leitz, Karl-Heinz, Redlingshöfer, Benjamin, Reg, Yvonne, Otto, Andreas, Schmidt, Michael, 2011, Metal Ablation with Short and Ultrashort Laser Pulses, Physics Procedia 12, 230–238.

Mannion, P. T., Favre, S., Mullan, C., Ivanov, D. S., O'Connor, G. M., Glynn, T. J.,

Doggett, B., and, Lunney, J. G., 2002, Langmuir Probe Investigation of Plasma

Expansion in Femto and Picosecond Laser Ablation of Selected Metals ,National

Centre for Laser Applications, NUI Galway, Ireland.

Mannion, Paul, Magee, Jonathan, Coyne, Edward, and M., O’Connor, Gerard, 2001, Ablation Thresholds in Ultrafast Laser Micro-machining of Common Metals in Air, National Centre for Laser Applications, National University of Ireland, Galway, Ireland, Proc. of SPIE Vol. 4876.

N.W. Ashcroft and N.D. Mermin, Solid State Physics, Saunders College Publishing, New York, 1976.

Qiu, T. Q., and Tien, C. L., 1993, Heat Transfer Mechanisms During Short-pulse Laser Heating of Metals ASME J. Heat Transfer, 115, pp. 835–841.

Schäfer, C.; Urbassek, H.M.; Zhigilei, L.V., 2002, Metal Ablation by Picosecond Laser Pulses: A hybrid simulation. Phys. Rev. B, in press.

S.I. Anisimov, B.S. Luk’yanchuk, A. Luches, 1996, An Analytical Model for Three- dimensional Laser Plume Expansion into Vacuum in Hydrodynamic Regime, Appl. Surface Science 96-98, pp 24-32.

S.I. Anisimov and B. Rethfeld, Izv. Ross. Akad. Nauk, Ser. Fiz. 61, 1642, 1997. Xianfan Xu , 2004, Molecular Dynamics Study of Phase Change Mechanisms During

Femtosecond Laser Ablation, Journal of Heat Transfer (ASME).

Zhigilei, Leonid, V., and Dongare, Avinash, M., 2002, Multi-scale Modeling of Laser Ablation: Applications to Nanotechnology, CMES, vol.3, no.5, pp.539-555,

Zeng, Xianzhong, 2004,Laser Ablation of Electronic Materials Including the Effects of Energy Coupling and Plasma Interactions, Ph.D. Thesis, University of California, Berkeley.

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