1 Nanostructured Functional Coatings of Iron Family Metals with Refractory. . .
33
25. Vernickaite E, Tsyntsaru N, Cesiulis H (2016) Electrodeposited co-W alloys and their
prospects as effective anode for methanol oxidation in acidic media. Surf & Coatings Tech
https://doi.org/10.1016/j.surfcoat.2016.07.049
26. Elezovi´ c N, Grgur BN, Krstaji´ c NV, Jovi´ c VD (2005) Electrodeposition and characterization
of Fe–Mo alloys as cathodes for hydrogen evolution in the process of chlorate production. J
Serb. Chem Soc 70(6):879–889
27. Gomez E, Pellicer E, Alcobe X, Valles E (2004) Properties of co-Mo coatings obtained by electrodeposition at pH 6.6. J Solid State Eletrochem 8:497–504.
https://doi.org/10.1007/s10008-004-0495-z
28. Danilov FI, Sknar IV, Sknar YE (2014) Electroplating of Ni-Fe alloys from methanesulfonate
electrolytes. Russ J Electrochem 50:293–296
29. Weston DP, Harris SJ, Shipway PH, Weston NJ, Yap GN (2010) Establishing relationships
between bath chemistry, electrodeposition and microstructure of Co-W alloy coatings produced
from a gluconate bath. Electrochim Acta 55:5695–5708
30. Ved MV, Sakhnenko MD (2010) Katalitychni ta zakhysni pokryttia splavamy i skladnymy oksydamy: elektrokhimichnyi syntez, prohnozuvannia vlastyvostei [Tekst]: monohrafiia.
Kharkiv NTU “KhPI” 272
31. ´
Cirovi´ c N, Spasojevi´ c P, Ribi´ c-Zelenovi´ c L, Maškovi´ c P, Spasojevi´ c M (2015) Synthesis,
structure and properties of nickel-iron-tungsten alloy electrodeposits PART I: effect of
synthesis parameters on chemical composition, microstructure and morphology. Sci Sinter
47:347–365. https://doi.org/10.2298/SOS1503347C
32. Yermolenko IY, Ved’ MV, Karakurkchi AV, Sakhnenko ND, Kolupaieva ZI (2017) Electrochemical behavior of Fe 3+ –WO 4
2− –Cit 3− and Fe 3+ –MoO 4
2− –WO 4
2− –Cit 3− systems. The
Issues of Chemistry and Chemical Technology 2(III):4–14
33. Labardi M, Allegrini M, Salerno M, Fredriani C, Ascoli C (1994) Dynamical friction
coefficient map using a scanning force and friction force microscope. Appl Phys 59:3
34. Karakurkchi AV, Ved’ MV, Sakhnenko ND et al (2015) Functional properties of multicomponent galvanic alloys of iron with molybdenum and tungsten. Func Mater 22:181–187.
https://doi.org/10.15407/fm22.02.181
35. Glushkova MO, Ved MV, Sakhnenko MD (2013) Corrosion properties of cobalt–silver alloy
electroplates. Mater Sci 49:292–297. https://doi.org/10.1007/s11003-013-9613-3
36. Ved’ M, Glushkova M, Sakhnenko N (2013) Catalitic properties of binary and ternary alloys
based on silver. Func Mater 2087–91. https://doi.org/10.15407/fm20.01.087
37. Yermolenko IY, Ved’ MV, Zyubanova SI, Androshchuk DS (2011) Polilihandni elektrolity dlya
anodnoho rozchynennya splaviv vol’framu [Poliligand electrolytes for anodic dissolution of
tungsten alloys]. The Issues of Chemistry and Chemical Technology 4:192–195
38. Tabakovic I, Gong J, Riemer S, Kautzky M (2015) Influence of surface roughness and
current efficiency on composition gradients of thin NiFe films obtained by electrodeposition
electrochemical/electroless deposition. J Electrochem Soc 162:D102–D108
39. Gómez E, Pellicer E, Vallés E (2004) Electrodeposition of soft-magnetic cobalt–
molybdenum coatings containing low molybdenum percentages. J Electroanal Chem 568:29–
36 https://doi.org/10.1016/j.jelechem.2003.12.032
40. Ghaferi Z, Sharafi S, Bahrololoom ME (2016) The role of electrolyte pH on phase evolution and magnetic properties of CoFeW codeposited films. Appl Surf Sci 375(1):35–41.
https://doi.org/10.1016/j.apsusc.2016.03.063
41. Yermolenko IY, Ved MV, Sakhnenko ND, Sachanova YI (2017) Composition, morphology,
and topography of galvanic coatings Fe-Co-W and Fe-Co-Mo. Nanoscale Res Lett 12(1):352.
https://doi.org/10.1186/s11671-017-2128-3
42. Karakurkchi AV, Ved’ MV, Sakhnenko ND, Ermolenko IY (2015) Electrodeposition of iron–
molybdenum–tungsten coatings from citrate electrolytes. Russ J Appl Chem 88:1860–1869.
https://doi.org/10.1134/S1070427215011018X
43. Li J, Meng S, Han J, Zhang X (2008) Valence electron structure and properties of the ZrO 2 .
Sci China Ser E-Technol Sci 51:1858–1866. https://doi.org/10.1007/s11431-008-0119-4
33
25. Vernickaite E, Tsyntsaru N, Cesiulis H (2016) Electrodeposited co-W alloys and their
prospects as effective anode for methanol oxidation in acidic media. Surf & Coatings Tech
https://doi.org/10.1016/j.surfcoat.2016.07.049
26. Elezovi´ c N, Grgur BN, Krstaji´ c NV, Jovi´ c VD (2005) Electrodeposition and characterization
of Fe–Mo alloys as cathodes for hydrogen evolution in the process of chlorate production. J
Serb. Chem Soc 70(6):879–889
27. Gomez E, Pellicer E, Alcobe X, Valles E (2004) Properties of co-Mo coatings obtained by electrodeposition at pH 6.6. J Solid State Eletrochem 8:497–504.
https://doi.org/10.1007/s10008-004-0495-z
28. Danilov FI, Sknar IV, Sknar YE (2014) Electroplating of Ni-Fe alloys from methanesulfonate
electrolytes. Russ J Electrochem 50:293–296
29. Weston DP, Harris SJ, Shipway PH, Weston NJ, Yap GN (2010) Establishing relationships
between bath chemistry, electrodeposition and microstructure of Co-W alloy coatings produced
from a gluconate bath. Electrochim Acta 55:5695–5708
30. Ved MV, Sakhnenko MD (2010) Katalitychni ta zakhysni pokryttia splavamy i skladnymy oksydamy: elektrokhimichnyi syntez, prohnozuvannia vlastyvostei [Tekst]: monohrafiia.
Kharkiv NTU “KhPI” 272
31. ´
Cirovi´ c N, Spasojevi´ c P, Ribi´ c-Zelenovi´ c L, Maškovi´ c P, Spasojevi´ c M (2015) Synthesis,
structure and properties of nickel-iron-tungsten alloy electrodeposits PART I: effect of
synthesis parameters on chemical composition, microstructure and morphology. Sci Sinter
47:347–365. https://doi.org/10.2298/SOS1503347C
32. Yermolenko IY, Ved’ MV, Karakurkchi AV, Sakhnenko ND, Kolupaieva ZI (2017) Electrochemical behavior of Fe 3+ –WO 4
2− –Cit 3− and Fe 3+ –MoO 4
2− –WO 4
2− –Cit 3− systems. The
Issues of Chemistry and Chemical Technology 2(III):4–14
33. Labardi M, Allegrini M, Salerno M, Fredriani C, Ascoli C (1994) Dynamical friction
coefficient map using a scanning force and friction force microscope. Appl Phys 59:3
34. Karakurkchi AV, Ved’ MV, Sakhnenko ND et al (2015) Functional properties of multicomponent galvanic alloys of iron with molybdenum and tungsten. Func Mater 22:181–187.
https://doi.org/10.15407/fm22.02.181
35. Glushkova MO, Ved MV, Sakhnenko MD (2013) Corrosion properties of cobalt–silver alloy
electroplates. Mater Sci 49:292–297. https://doi.org/10.1007/s11003-013-9613-3
36. Ved’ M, Glushkova M, Sakhnenko N (2013) Catalitic properties of binary and ternary alloys
based on silver. Func Mater 2087–91. https://doi.org/10.15407/fm20.01.087
37. Yermolenko IY, Ved’ MV, Zyubanova SI, Androshchuk DS (2011) Polilihandni elektrolity dlya
anodnoho rozchynennya splaviv vol’framu [Poliligand electrolytes for anodic dissolution of
tungsten alloys]. The Issues of Chemistry and Chemical Technology 4:192–195
38. Tabakovic I, Gong J, Riemer S, Kautzky M (2015) Influence of surface roughness and
current efficiency on composition gradients of thin NiFe films obtained by electrodeposition
electrochemical/electroless deposition. J Electrochem Soc 162:D102–D108
39. Gómez E, Pellicer E, Vallés E (2004) Electrodeposition of soft-magnetic cobalt–
molybdenum coatings containing low molybdenum percentages. J Electroanal Chem 568:29–
36 https://doi.org/10.1016/j.jelechem.2003.12.032
40. Ghaferi Z, Sharafi S, Bahrololoom ME (2016) The role of electrolyte pH on phase evolution and magnetic properties of CoFeW codeposited films. Appl Surf Sci 375(1):35–41.
https://doi.org/10.1016/j.apsusc.2016.03.063
41. Yermolenko IY, Ved MV, Sakhnenko ND, Sachanova YI (2017) Composition, morphology,
and topography of galvanic coatings Fe-Co-W and Fe-Co-Mo. Nanoscale Res Lett 12(1):352.
https://doi.org/10.1186/s11671-017-2128-3
42. Karakurkchi AV, Ved’ MV, Sakhnenko ND, Ermolenko IY (2015) Electrodeposition of iron–
molybdenum–tungsten coatings from citrate electrolytes. Russ J Appl Chem 88:1860–1869.
https://doi.org/10.1134/S1070427215011018X
43. Li J, Meng S, Han J, Zhang X (2008) Valence electron structure and properties of the ZrO 2 .
Sci China Ser E-Technol Sci 51:1858–1866. https://doi.org/10.1007/s11431-008-0119-4
