Rezyapova, Luiza R.,
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nanostructured commercially pure Grade 4
titaniumPARFENOV, E.V.,
MUKAEVA, V.R.,
FARRAKHOV, R.G.,
PARFENOVA, L.V.,
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DYAKONOV, G.S.,
VALIEV, R.Z.,
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nanostructured Ti Grade 4 with a composite coating obtained by plasma electrolytic oxidation
Parfenova, Lyudmila V.,
Galimshina, Zulfiya R.,
Gil’fanova, Guzel U.,
Alibaeva, Eliza I.,
Danilko, Ksenia V.,
Aubakirova, Veta R.,
Farrakhov, Ruzil G.,
Parfenov, Evgeny V.,
Valiev, Ruslan Z. (2022) and fibroblasts on the surface of coarse-grained or
nanostructured titanium modified with PEO and a c
Parfenova, L.V.,
Galimshina, Z.R.,
Gil'fanova, G.U.,
Alibaeva, E.I.,
Danilko, K.V.,
Pashkova, T.M.,
Kartashova, O.L.,
Farrakhov, R.G.,
Mukaeva, V.R.,
Parfenov, E.V.,
Nagumothu, R.,
Valiev, R.Z. (2022) of
nanostructured titanium modified with PEO and HA derivatives was found. Therefore, the resulting hybrid PEO
VALIEV, R.Z.,
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KAZARINOV, N.A.,
RAAB, G.I.,
MINASOV, T.B.,
STRÁSKÝ, J. (2020) is their
nanostructuring by using severe plastic deformation (SPD) techniques. For medical devices, such properties include
PARFENOVA, L.V.,
LUKINA, E.S.,
GALIMSHINA, Z.R.,
GIL'FANOVA, G.U.,
MUKAEVA, V.R.,
FARRAKHOV, R.G.,
PARFENOV, E.V.,
DANILKO, K.V.,
DYAKONOV, G.S. (2020) of
titanium and its alloys. The
titanium surface properties can be tuned both by creating an inorganic