Theoretical Modeling of Laser-Stimulated Nanostructures
287
8. 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
9. 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
10. 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
11. Berezovska N, Dmitruk I, Vovdenko S, Yeshchenko O, Teselko P, Dmytruk A, Blonskyi I
(2019) Sub-micron and nano sized features in laser-induced periodic surface structures. Ind J
Phys 93(4):495–502. https://link.springer.com/article/10.1007/s12648-018-1323-0
12. 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/
13. 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
14. 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
15. Korn GA, Korn TM (2013) Mathematical handbook for scientists and engineers: definitions,
theorems, and formulas for reference and review. Courier Corporation, pp 1132
287
8. 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
9. 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
10. 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
11. Berezovska N, Dmitruk I, Vovdenko S, Yeshchenko O, Teselko P, Dmytruk A, Blonskyi I
(2019) Sub-micron and nano sized features in laser-induced periodic surface structures. Ind J
Phys 93(4):495–502. https://link.springer.com/article/10.1007/s12648-018-1323-0
12. 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/
13. 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
14. 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
15. Korn GA, Korn TM (2013) Mathematical handbook for scientists and engineers: definitions,
theorems, and formulas for reference and review. Courier Corporation, pp 1132
