Effect of deformation nanostructuring on ion-beam erosion of metals

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Аннотация

The effect of deformation nanostructuring of copper, nickel, and titanium on ion-induced morphology and sputtering under 30 keV argon ions high-fluence irradiation along the normal to the surface has been studied. Sputtering of a layer commensurate with the size of metal grains leads to a uniform cone-shaped relief, the stationary erosion of which occurs with significant redepositing of atoms.

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Авторлар туралы

N. Andrianova

Moscow State University; Moscow Aviation Institute (National Research University)

Email: anatoly_borisov@mail.ru

Skobeltsyn Institute on Nuclear Physics, Moscow State University

Ресей, Moscow, 119991; Moscow, 125993

A. Borisov

Moscow State University; Moscow Aviation Institute (National Research University), Russia
3”STANKIN” Moscow State University of Technology

Хат алмасуға жауапты Автор.
Email: anatoly_borisov@mail.ru

Skobeltsyn Institute on Nuclear Physics, Moscow State University

Ресей, Moscow, 119991; Moscow, 125993; Moscow, 127055

M. Ovchinnikov

Moscow State University

Email: anatoly_borisov@mail.ru

Skobeltsyn Institute on Nuclear Physics

Ресей, Moscow, 119991

R. Khisamov

Institute for Metals Superplasticity Problems of the Russian Academy of Sciences

Email: anatoly_borisov@mail.ru
Ресей, Ufa, 450001

R. Mulyukov

Institute for Metals Superplasticity Problems of the Russian Academy of Sciences

Email: anatoly_borisov@mail.ru
Ресей, Ufa, 450001

Әдебиет тізімі

  1. Efe M., El-Atwani O., Guoc Y., Klenosky D.R. // Scripta Mater. 2014. V. 70. P. 31.
  2. Chen Z., Niu L-L., Wang Z. et al. // Acta Mater. 2018. V. 147. P. 100.
  3. Wurmshuber M., Doppermann S., Wurster S. et al. // Int. J. Refract. Hard Mater. 2023. V. 111. Art. No. 106125.
  4. Nagasaki T., Hirai H., Yoshino M., Yamada T. // Nucl. Instrum. Meth. Phys. Res. B. 2018. V. 418. P. 34.
  5. Michaluk C.A. // J. Electron. Mater. 2002. V. 31. P. 2.
  6. Chen J.-K., Tsai B.-H., Huang H.-S. // Mater. Transact. 2015. V. 56. P. 665.
  7. Reza M., Sajuri Z., Yunas J., Syarif J. // IOP Conf. Ser. Mater. Sci. Eng. 2016. V. 114. Art. No. 012116.
  8. Voitsenya V.S., Balden M., Bardamid A.F. et al. // Nucl. Instrum. Meth. Phys. Res. B. 2013. V. 302. P. 32.
  9. Yang W., Zhao G., Wang Y. et al. // J. Mater. Sci. Mater. Electron. 2021. V. 32. P. 26181.
  10. Mashkova E.S., Molchanov V.A. Medium-energy ion reflection from solids. Amsterdam, 1985. 444 p.
  11. Behrisch R., Eckstein W. Sputtering by particle bombardment. Berlin, Heidelberg: Springer-Verlag, 2007. 509 p.
  12. Smirnova N.A., Levit V.I., Pilyugin V.P. et al. // Phys Met. Metallogr. 1986. V. 61. P. 1170.
  13. Nazarov A.A., Mulyukov R.R. Nanostructred materials. In: Handbook of NanoScience. Engineering and technology. Boca Raton: CRC Press, 2002. Art. No. 22.
  14. Markushev M.V., Avtokratova E.V., Krymskiy S.V. et al. // Lett. Mater. 2022. V. 12. P. 463.
  15. Khisamov R. Kh., Khalikova G.R., Kistanov A.A. et al. // Contin. Mech. Thermodyn. 2023. V. 35. P. 1433.
  16. Murzaev R.T., Bachurin D.V., Mukhametgalina A.A. et al. // Phys. Lett. A. 2020. V. 384. Art. No. 126906.
  17. Жукова Ю.Н., Машкова Е.С., Молчанов В.А. и др. // Изв. РАН. Сер. физ. 1994. Т. 58. No 3. С. 92.
  18. Борисов А.М., Виргильев Ю.С., Машкова Е.С., Немов А.С. // Изв. РАН. Сер. физ. 2006. Т. 70. № 6. С. 820.
  19. Андрианова Н.Н., Борисов А.М., Машкова Е.С., Немов А.С. // Поверхность. 2005. № 3. C. 79.
  20. Littmark U., Hofer W.O. // J. Mater. Sci. 1978. V. 13. P. 2577.
  21. Гарин Ш.Н., Додонов А.И., Машкова Е.С. и др. // Изв. АН СССР. Сер. физ. 1985. Т. 49. С. 1808.
  22. Makeev M.A., Barabasi A.-L. // Nucl. Instrum. Meth. Phys. Res. B. 2004. V. 222. P. 316.
  23. Stadlmayr R., Szabo P.S., Berger B.M. et al. // Nucl. Instrum. Meth. Phys. Res. B. 2018. V. 430. P. 42.
  24. Шульга В.И. // Поверхность. Рентген. синхротр. и нейтрон. исслед.2020. № 12. С. 83.
  25. Борисов А.М., Машкова Е.С., Овчинников М.А. и др. // Поверхность. Рентген. синхротр. и нейтрон. исслед.2022. № 3. С. 71.
  26. Борисов А.М., Овчинников М.А., Машкова Е.С. и др. // Письма в ЖТФ. 2022. Т. 48. № 12. С. 24.
  27. Cupak C., Szabo P.S., Biber H. et al. // Appl. Surf. Sci. 2021. V. 570. Art. No. 151204.
  28. Szabo. P.S., Cupak C., Biber H. et al. // Surf. Interfaces. 2022. V. 30. Art. No. 101924.
  29. Diddens C., Linz S.J. // Eur. Phys. J. B. 2015. V. 88. P. 190.
  30. http://www.srim.org.
  31. Matsunami N., Yamamura Y., Itikawa Y. et al. // Atom. Data Nucl. Data Tables. 1984. V. 31. P. 1.

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1. JATS XML
2. Fig. 1. SEM images of the surface of copper samples with different structures after irradiation with Ar+ ions with an energy of 30 keV: (a) ultrafine-grained, irradiated with a fluence of 3 1018 ion/cm2, (b) fine-grained – with a fluence of 3 1018 ion/cm2, (c) fine-grained – with a fluence of 1.2 1019 ion/cm2.

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3. Fig. 2. SEM images of the surface of titanium samples after irradiation with Ar+ ions with an energy of 30 keV: (a) ultrafine-grained, irradiated with a fluence of 3 1018 ion/cm2, (b) coarse-grained – with a fluence of 1.2 1019 ion/cm2.

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4. Fig. 3. Dependence of the sputtered layer thickness Δx on the irradiation fluence of Ar+ ions with an energy of 30 keV for metals with different structures.

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5. Fig. 4. Distribution of the inclination angles θ of the cones for ultrafine-grained and fine-grained copper samples irradiated at different fluences (a), dependence of the sputtering coefficient on the inclination angle θ for the case of a single cone Y and a cone-shaped relief Yk on the copper surface when irradiated with Ar+ ions with an energy of 30 keV (b).

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