Specificity of Boundary Conditions for Laser-Stimulated …
301
4. Wu Z, Zhang N, Zhu X, An L, Wang G, Tan M (2018) Time-resolved shadowgraphs and
morphology analyses of aluminum ablation with multiple femtosecond laser pulses. Chin Phys
B 27(7):077901. http://iopscience.iop.org/article/10.1088/1674-1056/27/7/077901/meta
5. Mann T, Mathieson R, Murray M, Richards B, Jose G (2018) Femtosecond laser ablation
properties of Er 3+ ion doped zinc-sodium tellurite glass. J Appl Phys 124(4):044903. https://
aip.scitation.org/doi/abs/10.1063/1.5040947
6. Shugaev MV, Gnilitskyi I, Bulgakova NM, Zhigilei LV (2017) Mechanism of single-pulse
ablative generation of laser-induced periodic surface structures. Phys Rev B 96(20):205429.
https://journals.aps.org/prb/abstract/10.1103/PhysRevB.96.205429
7. Zhang N, Yang J, Zhu X (2012) Investigation of the ultrafast process of femtosecond laser
ablation of highly oriented pyrolytic graphite. Chin J Lasers 39(5):0503002. http://en.cnki.
com.cn/Article_en/CJFDTOTAL-JJZZ201205018.htm
8. Berezovska N, Dmitruk I, Kalyuzhnyy A, Dmytruk A, Blonskyi I (2018) Self-organized
structuring of surface of metal-semiconductor composite by femtosecond laser processing.
Ukrainian J Phys 63(5):406–412
9. Shmeleva LV, Suprun AD, Yezhov SM (2019) Simulation of the formation of a surface nanocrater under the action of high-power pulsed radiation—nanocomposites, nanostructures, and
their applications part of the Springer Proceedings in Physics book series, vol 221, no 34, pp
505–515. https://link.springer.com/chapter/10.1007%2F978-3-030-17759-1_34
10. Pavlyniuk OR, Datsyuk VV (2016) Electrostrictive mechanism of nanostructure formation at
solid surfaces irradiated by femtosecond laser pulses. Nanoscale Res Lett 11(1):1–6. http://nan
oscalereslett.springeropen.com/articles/10.1186/s11671%2D015%2D1224%2D5. https://doi.
org/10.1186/s11671-015-1224-5
11. Zhigalov VS (1998) Laser technology. Krasnoyarsk, 1998, 114 pp. http://sibsauktf.ru/courses/
hitech/html/index_htm (in Russian)
12. Alekseev BV (1982) Mathematical kinetics of reacting gases. Nauka, Moscow. 419 pp. https://
scholar.google.com.ua/scholar?hl=ru&as_sdt=0%2C5&q=Alekseev+B.+V.+Mathematical+
Kinetics+of+Reacting+Gases.+Nauka%2C+Moscow%2C+1982&btnG (in Russian)
13. Fedorchenko AM (1992) Teoretychna fizyka [Theoretical physics], Vol. 1. Kyiv, Vyshcha
shkola. 535 pp. https://scholar.google.com.ua/scholar?hl=ru&as_sdt=0%2C5&q=Fedorc
henko+A.+M.+%22Teoretychna+fizyka%22+Theoretical+physics%5D.+Kyiv%2C+Vys
hcha+shkola+1+%281992%29%3A+535&btnG (in Ukrainian)
14. Landau LD, Lifshits EM (1986) Theoretical Physics, Vol. VI, Hydrodynamics. Science. 736
pp. https://scholar.google.com.ua/scholar?hl=ru&as_sdt=0%2C5&q=Landau+L.+D.%2C+
Lifshits+E.+M.+Theoretical+Physics%2C+V.+VI%2C+Hydrodynamics.+Science.+1986&
btnG (in Russian)
15. Landau L.D., Lifshits Ye.M. Teoriya uprugosti. Tom VII. – M. Nauka, 1987. – 248p. (in
Russian)
16. Datsyuk VV, Tovkach OM (2011) Optical properties of a metal nanosphere with spatially
dispersive permittivity. J Opt Soc Am B: Opt Phys 28(5):1224–1230. https://doi.org/10.1364/
JOSAB.28.001224
17. Ashkroft N., Mermin N. Fizika tverdogo tela. Tom 2. – M.: Mir, 1979. 424 pp. http://mat.net.
ua/mat/biblioteka-fizika/Ashkroft-tverdoe-telo-t1.pdf (in Russian)
18. Suprun AD, Shmeleva LV, Razumova MA (2011) The influence of bulk absorption of substance
on the threshold of destruction by the intensive pulse of electromagnetic radiation. Funct Mater
18(2):237–243. http://functmaterials.org.ua/contents/18-2/
Précédent

- 309/763

Suivant