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С П И С Ъ К от забелязани цитати на научните трудове на д-р Николай Стоянов Божков No. 60. N. Boshkov, “Galvanic Zn-Mn alloys - electrodeposition, phase composition, corrosion behaviour and protective ability”, Surface and Coatings Technology, 172, 2-3, 217-226, 2003. 1. Touazi, S., Bucko, M., Makhloufi, L., Legat, A., Bajat, J.B., “The electrochemical behavior of Zn-Mn alloy coating in carbonated concrete solution”, (2016), Surface Review and Letters, 23, (4), art. no. 1650030. 2. Close, D., Stein, N., Allain, N., Tidu, A., Drynski, E., Merklein, M., Lallement, R., “Electrodeposition, microstructural characterization and anticorrosive properties of Zn-Mn alloy coatings from acidic chloride electrolyte containing 4-hydroxybenzaldehyde and ammonium thiocyanate”, (2016), Surface and Coatings Technology, 298, 73-82. 3. Close, D., Stein, N., Allain, N., Tidu, A., Drynski, E., Merklein, M., Lallement, R., “Electrodeposition, microstructural characterization and anticorrosive properties of Zn-Mn alloy coatings”, (2016), MA2016-01, 229-th ECS Meeting, San Diego, CA, Meeting Abstract. 4. Guo, J., Guo, X., Wang, S., Zhang, Z., Dong, J., Peng, L., Ding, W., “Effects of glycine and current density on the mechanism of electrodeposition, composition and properties of Ni-Mn films prepared in ionic liquid”, (2016), Applied Surface Science, 365, 31-37. 5. Li, Q., Lu, H., Cui, J., An, M., Li, D., “Understanding the low corrosion potential and high corrosion resistance of nano-zinc electrodeposit based on electron work function and interfacial potential difference”, (2016), RSC Advances, 6, (100), 97606-97612. 6. Tsakova, V., “The bulgarian physicochemical tradition and the Institute of Physical Chemistry "Academician Rostislaw Kaischew", (2016), Chemistry, 25, (1), 35-67. 7. Liu, S., Zhao, X., Zhao, H. et al., “Corrosion performance of zinc coated steel in seawater environment”, (2016), Chinese Journal of Oceanology and Limnology, doi:10.1007/s00343-016- 5269-9. 8. Abou-Krisha, M.M., Assaf, F.H., Alduaij, O.K. et al.,”Deposition Potential Influence on the Electrodeposition of Zn–Ni–Mn Alloy“, (2016), Transactions of the Indian Institute of Metals, doi:10.1007/s12666-016-0859-y.

No. 60. N. Boshkov, “Galvanic Zn-Mn alloys ......2 9. Loukil N., Bensaleh W., Feki M., “Electrodeposition and Characterization of Zn-Mn alloys for corrosion protection of steel”,

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  • С П И С Ъ К

    от забелязани цитати на научните трудове на д-р Николай Стоянов Божков

    No. 60. N. Boshkov, “Galvanic Zn-Mn alloys - electrodeposition, phase composition, corrosion

    behaviour and protective ability”, Surface and Coatings Technology, 172, 2-3, 217-226, 2003.

    1. Touazi, S., Bucko, M., Makhloufi, L., Legat, A., Bajat, J.B., “The electrochemical behavior

    of Zn-Mn alloy coating in carbonated concrete solution”, (2016), Surface Review and Letters, 23, (4),

    art. no. 1650030.

    2. Close, D., Stein, N., Allain, N., Tidu, A., Drynski, E., Merklein, M., Lallement, R.,

    “Electrodeposition, microstructural characterization and anticorrosive properties of Zn-Mn alloy

    coatings from acidic chloride electrolyte containing 4-hydroxybenzaldehyde and ammonium

    thiocyanate”, (2016), Surface and Coatings Technology, 298, 73-82.

    3. Close, D., Stein, N., Allain, N., Tidu, A., Drynski, E., Merklein, M., Lallement, R.,

    “Electrodeposition, microstructural characterization and anticorrosive properties of Zn-Mn alloy

    coatings”, (2016), MA2016-01, 229-th ECS Meeting, San Diego, CA, Meeting Abstract.

    4. Guo, J., Guo, X., Wang, S., Zhang, Z., Dong, J., Peng, L., Ding, W., “Effects of glycine and

    current density on the mechanism of electrodeposition, composition and properties of Ni-Mn films

    prepared in ionic liquid”, (2016), Applied Surface Science, 365, 31-37.

    5. Li, Q., Lu, H., Cui, J., An, M., Li, D., “Understanding the low corrosion potential and high

    corrosion resistance of nano-zinc electrodeposit based on electron work function and interfacial

    potential difference”, (2016), RSC Advances, 6, (100), 97606-97612.

    6. Tsakova, V., “The bulgarian physicochemical tradition and the Institute of Physical

    Chemistry "Academician Rostislaw Kaischew", (2016), Chemistry, 25, (1), 35-67.

    7. Liu, S., Zhao, X., Zhao, H. et al., “Corrosion performance of zinc coated steel in seawater

    environment”, (2016), Chinese Journal of Oceanology and Limnology, doi:10.1007/s00343-016-

    5269-9.

    8. Abou-Krisha, M.M., Assaf, F.H., Alduaij, O.K. et al.,”Deposition Potential Influence on the

    Electrodeposition of Zn–Ni–Mn Alloy“, (2016), Transactions of the Indian Institute of Metals,

    doi:10.1007/s12666-016-0859-y.

  • 2

    9. Loukil N., Bensaleh W., Feki M., “Electrodeposition and Characterization of Zn-Mn

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  • 3

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  • 4

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  • 5

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  • 6

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  • 11

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    23. Heydari Gharahcheshmeh, M., Heydarzadeh Sohi, M., “Pulse electrodeposition of Zn-Co

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    34. Gomes, A., Frade, T., Da Silva Pereira, M.I., “Studies on the stability of Zn and Zn-TiO2

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  • 15

    on the electrodeposition process, morphology and composition of the Zn-Mn alloy”), Universidade

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    No. 62. Boshkov N., Petrov K., Vitkova S., Nemska S., Raichevski G., “Composition of the

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  • 17

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  • 18

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  • 19

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    3. Kazimierczak, H., Hara, A., Bigos, A., Ozga, P., “Electrodeposition of Zn-Mn-Mo layers

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  • 20

    4. Guo, J., Guo, X., Wang, S., Zhang, Z., Dong, J., Peng, L., Ding, W., “Effects of glycine and

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    6. Close, D., Stein, N., Allain, N., Tidu, A., Drynski, E., Merklein, M., Lallement, R.,

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    7. Popov, B.N., “Corrosion Engineering: Principles and Solved Problems”, (2015), 1-774.

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    9. Fashu, S., Gu, C.D., Zhang, J.L., Zheng, H., Wang, X.L., Tu, J.P., “Electrodeposition,

    Morphology, Composition, and Corrosion Performance of Zn-Mn Coatings from a Deep Eutectic

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    10. Lee M.H., Kim Y.W., Lee S.G., Kang J.W., Park J.M., Moon K.M., Kim Y.H., “Influence of

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    11. Ganesan, S., Prabhu, G., Popov, B., “Electrodeposition and characterization of Zn-Mn

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    14. Cross, S.R., Woollam, R., Shademan, S., Schuh, C.A., “Computational design and

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  • 21

    15. Zhai, X., Myamina, M., Duan, J., Hou, B., “Microbial corrosion resistance of galvanized

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    (2013), Corrosion Science, 72, 99-107.

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    17. Liu, J.H., Chen, J.L., Liu, Z., Yu, M., Li, S.M., “Fabrication of Zn-Ni/Ni-P compositionally

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    18. He, F., Luo, X.-Y., Hu, Y.-B., Ling, J., “Influence of Mg on corrosion resistance of hot-dip

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    20. He F., Luo X., Hu Y.B., Ling J., “Influence of Mg on corrosion resistance of hot-dip Zn-Al

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    21. Chen, J.-L., Liu, J.-H., Li, S.-M., Yu, M., “Corrosion resistance of Zn-Ni/Ni and Ni/Zn-Ni

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    22. Rubin, W., De Oliveira, E.M., Carlos, I.A., “Study of the influence of a boric-sorbitol

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    24. Wang, J., Wu, Z., Su, X., Wu, C., Liu, Y., Hao, T., “Analysis of morphology and growth

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    25. Rahsepar, M., Bahrololoom, M.E., “Corrosion resistance of Ni/Zn-Fe/Zn and Ni/Zn/Zn-Fe

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    26. Bucko M.M., Tomic M.V., Stojanovic M.V., Pavlovic M.G., Bajat J.B., “Elektrohemijsko

    taloženje i koroziona stabilnost prevlaka Zn-Mn legura”, (“Electrochemical deposition and corrosion

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  • 22

    27. Osuchowska E., Bielinski J., Lutze R., Kwiatkowski L., “Antykorozyjne powloki

    elektrolityczne na baize cynku”, (“Anticorrosion electrolytic zinc-based coating”) (2010), Inzynieria

    Powierzchni, 3, 40-47.

    28. Rahsepar, M., Bahrololoom, M.E., “Study of surface roughness and corrosion performance of

    Ni/Zn-Fe and Zn-Fe/Ni compositionally modulated multilayer coatings”, (2009), Surface and Coatings

    Technology, 204, (5), 580-585.

    29. Rahsepar, M., Bahrololoom, M.E., “Corrosion study of Ni/Zn compositionally modulated

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    (11), 2537-2543.

    30. Díaz-Arista, P., Ortiz, Z.I., Ruiz, H., Ortega, R., Meas, Y., Trejo, G., “Electrodeposition and

    characterization of Zn-Mn alloy coatings obtained from a chloride-based acidic bath containing

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    1175.

    31. Sørensen, P.A., Kiil, S., Dam-Johansen, K., Weinell C.E., “Anticorrosive coatings: a

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    32. Ferkous H., Talhi B., Barj M., Boukherroub R., Szunerits S., “Investigation of the Ability of

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    33. Rubin W., “Estudo da influencia do complex borico sorbitol no processo de electrodeposicao,

    morfologia e composicao da liga Zn-Mn”, (“Study of the influence of the boric acid sorbitol complex

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    34. Junior J.M.F., “Obtencao e Caracterizacao de Revestimentos de Zn-Mn em Meio de Sulfato”,

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    35. Ganesan, P., Kumaraguru, S.P., Popov, B.N., “Development of compositionally modulated

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    36. Wang D., “Organosilane self-assembled layers (SAMs) and hybrid silicate magnesium-rich

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  • 23

    37. Ganesan, P., Kumaraguru, S.P., Popov, B.N., “Development of Zn-Ni-Cd coatings by pulse

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    characterization of steel/cement paste interface microstructure and corrosion phenomena in

    mortars suffering from chloride attack”, Corrosion Science, 48, 12, 4001 - 4019, 2006.

    1. Medina, C., De Rojas S., M.I., Thomas, C., Polanco, J.A., Frías, M., “Durability of recycled

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    2. Romero J.D.M., “Efecto del ambiente Marino en edificios de segunda residencia en la costa

    valenciana. Influencia del crecimiento urbanistico y sistemas constructivos”, (“Effect of the marine

    environment on buildings of second residence on the Valencian coast. Influence of urban growth and

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    3. Pacheco, J., Çopuroğlu, O., “Quantitative energy-dispersive X-ray microanalysis of chlorine in

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    International Conference on Fracture Mechanics of Concrete and Concrete Structures FraMCoS-9, pp.

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    7. Moreno, J.D., Bonilla, M., Adam, J.M., Victoria Borrachero, M., Soriano, L., “Determining

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    8. Wang, D., Shi, J., Jiang, J., Sun, W., “Chloride-induced corrosion resistance of low-alloyed

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    9. Aperador, W., Plaza, M., Delgado, A., “Improved protection against corrosion of galvanized

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    10. Rodríguez, A., Gutiérrez-González, S., Prieto, M.I., Cobo, A., Calderón, V.,”Analysis of

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    11. Serdar, M., Meral, C., Kunz, M., Bjegovic, D., Wenk, H.-R., Monteiro, P.J.M., “Spatial

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    12. Pavoine, A., Harbec, D., Chaussadent, T., Tagnit-Hamou, A., Divet, L., “Impact of alternative

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    13. Itty, P.-A., Serdar, M., Meral, C., Parkinson, D., MacDowell, A.A., Bjegović, D., Monteiro,

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    15. Shi, W., Dong, Z.H., Kong, D.J., Guo, X.P., “Application of wire beam electrode technique to

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    16. Silva, N., Tang, L., Lindqvist, J.E., Boubitsas, D., “Chloride profiles along the concrete-steel

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    18. Goncalves, A.R.F., “Avaliação da durabilidade de fitas metálicas embebidas em argamassa

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    19. Aperador-Chaparro, W., Delgado-Tobón, A.E., Bautista-Ruiz, J.H., “Application of cathodic

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    protección catódica en el laboratorio a los morteros de escoria activada alcalinamente y al Portland

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    23. Sosa, M., Pérez-López, T., Reyes, J., Corvo, F., Camacho-Chab, R., Quintana, P., Aguilar, D.,

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    28. Silva, N., Luping, T., Lindqvist, J.E., Boubitsas, D., “Chloride contents at the concrete-steel

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    No. 59. Boshkov N., Petrov K., Vitkova S., Raichevski G., “Galvanic alloys Zn-Mn - composition

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    1. Close, D., Stein, N., Allain, N., Tidu, A., Drynski, E., Merklein, M., Lallement, R.,

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    coatings from acidic chloride electrolyte containing 4-hydroxybenzaldehyde and ammonium

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    2. Close, D., Stein, N., Allain, N., Tidu, A., Drynski, E., Merklein, M., Lallement, R.,

    “Electrodeposition, microstructural characterization and anticorrosive properties of Zn-Mn alloy

    coatings”, (2016), MA2016-01, 229-th ECS Meeting, San Diego, CA, Meeting Abstract.

    3. Guo, J., Guo, X., Wang, S., Zhang, Z., Dong, J., Peng, L., Ding, W., “Effects of glycine and

    current density on the mechanism of electrodeposition, composition and properties of Ni-Mn films

    prepared in ionic liquid”, (2016), Applied Surface Science, 365, 31-37.

    4. Kaassis, A.Y.A., Wei, M., Williams, G.R., “New biocompatible hydroxy double salts and

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    5. Ji S.Y., Liang S.H., Song K.X., Li H.X., Li Z., “Effects of lanthanum on the microstructure,

    electrochemical behavior, and anti-corrosion properties of zinc–copper–titanium alloy in 3% sodium

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    6. Popov, B.N., Corrosion Engineering: Principles and Solved Problems, (2015), p. 1-774.

    7. Fashu, S., Gu, C.D., Zhang, J.L., Zheng, H., Wang, X.L., Tu, J.P., “Electrodeposition,

    Morphology, Composition, and Corrosion Performance of Zn-Mn Coatings from a Deep Eutectic

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    8. Quites, F.J., Germino, J.C., Atvars, T.D.Z., “Improvement in the emission properties of a

    luminescent anionic dye intercalated between the lamellae of zinc hydroxide-layered”, (2014),

    Colloids and Surfaces A: Physicochemical and Engineering Aspects, 459, 194-201.

    9. Barahuie, F., Hussein, M.Z., Fakurazi, S., Zainal, Z., “Development of drug delivery systems

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    15, (5), 7750-7786.

  • 28

    10. Wang, Y., Zeng, J., “Effects of manganese addition on microstructures and corrosion

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    55-65.

    11. Ganesan, S., Prabhu, G., Popov, B., “Electrodeposition and characterization of Zn-Mn

    coatings for corrosion protection”, (2014), Surface and Coatings Technology, 238, 143-151.

    12. Yao, C., Wang, Z., Tay, S.L., Gao, W., “Effects of Mg on morphologies and properties of hot

    dipped Zn-Mg coatings”, (2014), Surface and Coatings Technology, 260, 39-45.

    13. Szczygiel, B., Laszczynska, A., “Influence of bath concentration and pH on electrodeposition

    process of ternary Zn-Ni-Mo alloy coatings”, (2014), Transactions of the Institute of Metal Finishing,

    92, (4), 196-202.

    14. Machovsky, M., Kuritka, I., Sedlak, J., Pastorek, M., “Hexagonal ZnO porous plates prepared

    from microwave synthesized layered zinc hydroxide sulphate via thermal decomposition”, (2013),

    Materials Research Bulletin, 48, (10), 4002-4007.

    15. Mohsin, S.M.N., Hussein, M.Z., Sarijo, S.H., Fakurazi, S., Arulselvan, P., Hin, T.-Y.Y.,

    “Synthesis of (cinnamate-zinc layered hydroxide) intercalation compound for sunscreen application”,

    (2013), Chemistry Central Journal, 7, (1), art. No. 26.

    16. Cousy, S., Svoboda, L., Zelenka, J., “Basic precipitation of Simonkolleite nanoplatelets”,

    (2013), NANOCON 2013 - Conference Proceedings, 5th International Conference, pp. 265-268.

    17. Ganesan, S., Prabhu, G., Popov, B.N., “Development of Zn-Mn alloy based sacrificial

    coatings”, (2012), ECS Transactions, 50, (31), 405-424.

    18. Thomas, N., “Mechanochemical synthesis of layered hydroxy salts”, (2012), Materials

    Research Bulletin, 47, (11), 3568-3572.

    19. Rubin, W., De Oliveira, E.M., Carlos, I.A., “Study of the influence of a boric-sorbitol

    complex on Zn-Mn electrodeposition and on the morphology, chemical composition, and structure of

    the deposits”, (2012), Journal of Applied Electrochemistry, 42, (1), 11-20.

    20. Thomas, N., Rajamathi, M., “High selectivity in anion exchange reactions of the anionic clay,

    cobalt hydroxynitrate”, (2011), Journal of Materials Chemistry, 21, (44), 18077-18082.

    21. Thébault, F., Vuillemin, B., Oltra, R., Allely, C., Ogle, K., “Modeling bimetallic corrosion

    under thin electrolyte films”, (2011), Corrosion Science, 53, (1), 201-207.

    22. Xu Q.Y., Li Y., “Effect of Titanium and Cerium on Microstructure and Corrosion Resistance

    of Hot - Dip Galvanized Coatings”, (2011), Electroplating and Finishing, 30, (8), 28-31.

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    23. Reffass, M., Berziou, C., Rébéré, C., Billard, A., Creus, J., “Corrosion behaviour of

    magnetron-sputtered Al1-x-Mnx coatings in neutral saline solution”, (2010), Corrosion Science, 52,

    (11), 3615-3623.

    24. Osuchowska E., Bielinski J., Lutze R., Kwiatkowski L., “Antykorozyjne powloki

    elektrolityczne na baize cynku”, (“Anticorrosion electrolytic zinc-based coatings”) (2010), Inzynieria

    Powierzchni, (Surface Engineering), 3, 40-47.

    25. Rubin W., “Estudo da influencia do complex borico sorbitol no processo de electrodeposicao,

    morfologia e composicao da liga Zn-Mn”, (“Study of the influence of the boric acid sorbitol complex

    on the electrodeposition process, morphology and composition of the Zn-Mn alloy”), Universidade

    Federal de Sao Carlos, 2009, PhD Thesis, p. 7.

    26. Pistofidis, N., Vourlias, G., Stergioudis, G., Tsipas, D., Polychroniadis, E.K., “Hot-dip

    galvanized and alternative zinc coatings”, (2009), Corrosion Protection: Processes, Management and

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    27. Rosalbino, F., Angelini, E., Macciò, D., Saccone, A., Delfino, S., “Application of EIS to

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    28. Díaz-Arista, P., Ortiz, Z.I., Ruiz, H., Ortega, R., Meas, Y., Trejo, G., “Electrodeposition and

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    29. Zhang J.Y., Liu Q.F., Liu Q., “Research Status and Tendency of Corrosion Resistant Zn -

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