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Role of carbon in the formation of the structure and magnetic properties of Ni@CNx nanoclusters under reactive magnetron deposition

https://doi.org/10.17586/2220-8054-2017-8-6-804-808

Abstract

Nanostructured hybrid Ni–CNx films were grown by magnetron sputtering of a composite graphite-nickel target. Atomic force microscopy showed the clustered nature of the films deposition on the substrate surface: a relatively high pressure in the low-temperature magnetron plasma made it possible to form the Ni@CNx nanoclusters type “core-shell”, where metallic nickel is the core and carbon nitride is the shell. When studying the role of carbon in the formation of the structure and properties of Ni@CNx nanoclusters, it was established that the saturation magnetization 4πMs of nanoclusters drops sharply with a carbon content above 30 at.%. The reason is the formation of an increasingly saturated solid solution of carbon in nickel. At a carbon concentrations above 38 at.%, amorphous Ni–CNx nanoclusters are formed in the magnetron plasma, which are deposited on the substrate. An increase in the substrate temperature leads to the crystallization of Ni atoms, and the C and N atoms are forced out onto the surface of the nickel core, forming an array of Ni@CNx elements.

About the Authors

R. V. Shalayev
Donetsk Institute for Physics and Engineering named after A.A. Galkin
Ukraine

R. Luxembourg str. 72, 83114, Donetsk



V. N. Varyukhin
Donetsk Institute for Physics and Engineering named after A.A. Galkin
Ukraine

R. Luxembourg str. 72, 83114, Donetsk



A. M. Prudnikov
Donetsk Institute for Physics and Engineering named after A.A. Galkin
Ukraine

R. Luxembourg str. 72, 83114, Donetsk



A. I. Linnik
Donetsk Institute for Physics and Engineering named after A.A. Galkin
Ukraine

R. Luxembourg str. 72, 83114, Donetsk



V. V. Syrotkin
Donetsk Institute for Physics and Engineering named after A.A. Galkin
Ukraine

R. Luxembourg str. 72, 83114, Donetsk



References

1. Gómez-Gualdrón D.A., Beetge J.M., Balbuena P.B. Characterization of Metal Nanocatalyst State and Morphology during Simulated Single-Walled Carbon Nanotube Growth. J. Phys. Chem. C, 2013, 117, P. 12061–12070.

2. Cheng D., Wang W., Huang S. Coreshell-structured bimetallic clusters and nanowires. J. Phys.: Condens. Matter., 2007, 19, P. 356217.

3. Sunny V., Kumar D.S., et al. Synthesis and properties of highly stable nickel/carbon core/shell nanostructures. Carbon, 2010, 48, P. 1643– 1651.

4. Mel El A.A., Gautron E., Angleraud B., Granier A. Synthesis of nickel-filled carbon nanotubes at 350 ◦C. Carbon, 2011, 49, P. 4595–4598.

5. Sacanna S., Rossi L., Pine D.J. Magnetic Click Colloidal Assembly. Journal of the American Chemical Society, 2012, 134, P. 6112–6115.

6. Kovács Gy.J., Koós A., et al. Structure and spectroscopic properties of C–Ni and CNx–Ni nanocomposite films. J. Appl. Phys., 2005, 98, P. 034313-5.

7. Navas D., Hernandez-Velez M., et al. Magnetic properties of densely packed arrays of Ni nanowires as a function of their diameter and lattice parameter. Appl. Phys. Lett., 2007, 90, P. 192501-5.

8. Rossi G., Rapallo A., et al. Magic Polyicosahedral Core-Shell Clusters. Phys. Rev. Lett., 2004, 93, P. 105503-7.

9. Kashtanov P.V., Smirnov B.M., Hippler R. Magnetron plasma and nanotechnology. Physics–Uspekhi, 2007, 50, P. 455–488.

10. Dovgii V.T., Linnik A.I., et al. Anomalous magnetic hysteresis in La0.6Sr0.2Mn1.2O3δ manganites with a perovskite structure. Technical Physics Letters, 2003, 29, P. 610–612.

11. Linnik A.I., Prudnikov A.M., et al. Synthesis and magnetic properties of nanocolumnar nickel films deposited in argon-nitrogen atmosphere. Technical Physics Letters, 2012, 38, P. 499–502.

12. Tsurin V.A., Yermakov A.Ye., et al. Synthesis, Structure, and Magnetic Properties of Iron and Nickel Nanoparticles Encapsulated into Carbon. Physics of Solid State, 2014, 56, P. 287–301.

13. Galakhov V.R., Buling A., et al. Carbon States in Carbon-Encapsulated Nickel Nanoparticles Studied by Means of X-ray Absorption, Emission, and Photoelectron Spectroscopies. J. Phys. Chem. C, 2011, 115, P. 24615–24620.

14. Ponosov Yu.S., Uimin M.A., et al. Raman Light Scattering and Electron Microscopy of Nanocomposites with the Metal CoreCarbon Shell Structure. Physics of Solid State, 2013, 55, P. 1528–1535.


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For citations:


Shalayev R.V., Varyukhin V.N., Prudnikov A.M., Linnik A.I., Syrotkin V.V. Role of carbon in the formation of the structure and magnetic properties of Ni@CNx nanoclusters under reactive magnetron deposition. Nanosystems: Physics, Chemistry, Mathematics. 2017;8(6):804-808. https://doi.org/10.17586/2220-8054-2017-8-6-804-808

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ISSN 2220-8054 (Print)
ISSN 2305-7971 (Online)