An Overview of Surface Coating Methodologies and Their Use in Technical Materials

Open Access

Year : 2024 | Volume : 12 | Special Issue 06 | Page : 19 35
    By

    Sanjay Kumar Awasthi,

  • Kamal Sharma,

  • Aayush Gupta,

  1. Professor, Department of Mechanical Engineering, GLA University, Mathura, Uttar Pradesh, India
  2. Professor, Department of Mechanical Engineering, GLA University, Mathura, Uttar Pradesh, India
  3. Assistant Professor, Department of Mechanical Engineering, GLA University, Mathura, Uttar Pradesh, India

Abstract

To safeguard the product or structure against chemical harm, a variety of procedures and materials can be applied in coating applications today. Nowadays, coatings are used extensively in manufacturing all over the world to increase efficiency and reduce expenses two factors that are essential to preserving the sector’s profitability. Coated materials have greater strength compared to uncoated materials. A variety of materials, including bio glass, polymers, ceramics, strong and hard metals, and plastics, are accessible to designers as straightforward ways to provide long-term security. Physical/chemical vapour deposition, sol gel, thermal spray, micro arc oxidation, and electro deposition are only a few of the numerous methods that have been documented and studied thus far. This review study brought together recent advancements in the investigation of various functional coating categories, with an emphasis on their uses in intelligent and green buildings. Phase change materials (PCM) coatings and coatings designed to reduce surface solar radiation were among them. Additionally, they contained photo catalytic, hydrophilic, and hydrophobic coatings. High hardness, UV scattering, and homogeneous dispersion at the nanoscale are integrated with the protective properties of conventional coating systems. The current state of nanocoating is examined in this work along with a nanocoating system based on graphene, carbon nanotubes, titanium dioxide, and zinc oxide. At last, a photo of the nanocoating is displayed.

Keywords: Coatings, surface modification, thermal spray, sol-gel, and vapour deposition.

[This article belongs to Special Issue under section in Journal of Polymer and Composites (jopc)]

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How to cite this article:
Sanjay Kumar Awasthi, Kamal Sharma, Aayush Gupta. An Overview of Surface Coating Methodologies and Their Use in Technical Materials. Journal of Polymer and Composites. 2024; 12(06):19-35.
How to cite this URL:
Sanjay Kumar Awasthi, Kamal Sharma, Aayush Gupta. An Overview of Surface Coating Methodologies and Their Use in Technical Materials. Journal of Polymer and Composites. 2024; 12(06):19-35. Available from: https://journals.stmjournals.com/jopc/article=2024/view=179968


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References

  1. Frommeyer. G. Wassermann, “Anomalous properties of in situ-produced silver copper composite wires I. Electrical conductivity.” Physica status solidi(a) 27.1 (1975) 99-105. https://doi.org/10.1002/pssa.2210270112
  2. H Ibrahim, AR Jahadakbar, A Dehghan, NS Moghaddam, A Amerinatanzi, M Elahinia, “In vitro corrosion assessment of additively manufactured porous NiTi structures for bone fixation applications.” Metals 8.3 (2018) 164. https://doi.org/10.3390/met8030164
  3. SaerehMirzababaei, Peter Filip, “Impact of humidity on wear of automotive friction materials.” Wear 376 (2017) 717-726. https://doi.org/10.1016/j.wear.2017.02.020
  4. Bhushan, B K Gupta,Handbook of Tribology: Materials, coatings, and surface treatments. United States N. p., 1991-12-31 Web.
  5. Amir Dehghanghadikolaei, BehrouzMohammadian, NavidNamdari, BehzadFotovvatiet, “Abrasive machining techniques for biomedical device applications.” J.Mater. Sci 5.1 (2018) 1-11. https://DOI: 10.19080/JOJMS.2018.04.555653.
  6. D. Klaassen, D. Curtis, Mary O. Amdur, eds. Casarett and Doull’s toxicology: the basic science of poisons. Vol. 1236. New York: McGraw-Hill, 2013.
  7. R.Thakare, JA Wharton, RJK Wood, C Menger, “Exposure effects of alkaline drilling fluid on the microscale abrasion–corrosion of WC-based hard metals.” Wear 263.1-6 (2007) 125-136. https://doi.org/10.1016/j.wear.2006.12.047
  8. Jeanine T. DeMasi-Marcin, Dinesh K. Gupta, “Protective coatings in the gas turbine engine.” Surface and Coatings Technology 68 (1994) 1-9. https://doi.org/10.1016/0257-8972(94)90129-5
  9. RK Annavarapu, S Kim, M Wang, AJ Hart, H Sojoudi, “Explaining evaporation-triggered wetting transition using local force balance model and contact line-fraction.” Scientific reports 9.1 (2019) 405. https://doi.org/10.1038/s41598-018-37093-6
  10. Nan Gao,Yuying Yan., “Modeling superhydrophobic contact angles and wetting transition.” Journal of Bionic Engineering 6.4 (2009) 335-340. https://doi.org/10.1016/S1672-6529(08) 60135-3
  11. Naveen Kumar, Vikas Kumar Choubey, “Comparative evaluation of oxidation resistance of detonation gun-sprayed Al2O3–40% TiO2 coating on nickel-based super alloys at 800° C and 900° C.” High Temperature Corrosion of Materials 99.5 (2023) 359-373. https://doi.org/10.1007/s11085-023-10157-3
  12. Naveen Kumar, Vikas Kumar Choubey, “Effect of WC-Co and 86WC-10Co-4Cr coatings on type-II hot corrosion behaviour& microstructure characteristics at 650 degree celsius.”Surface and Coatings Technology 469 (2023) 129812. https://doi.org/10.1016/j.surfcoat.2023.129812
  13. Karen K Gleason, “Overview of chemically vapor deposited (CVD) polymers.” CVD Polymers:Fabrication of Organic Surfaces and Devices (2015) 1-11. https://doi.org/10.1002/9783527690275.ch1
  14. Naveen Kumar, V.K Choubey, “Recent trends in coating processes on various AISI steel substrates: A review”. Journal of Materials Science59 (2023): 1-28.
  15. NaveenKumar, Vikas Kumar Choubey, “Experimental investigation on hot corrosion, oxidation and microstructure of WC based cermet HVOF coating.” High Temperature Corrosion of Materials (2023) 1-20. https://doi.org/10.1007/s11085-023-10179-x
  16. Yiming Li, David Mann,Marco Rolandi, Woong Kim,Ant Ural,Steven Hung,Ali Javey,Jien Cao,Dunwei Wang,Erhan Yenilmez,Qian Wang,James F. Gibbons, Yoshio Nishi,Hongjie Dai, “Preferential growth of semiconducting single-walled carbon nanotubes by a plasma enhanced CVD method.” Nano letters 4.2 (2004) 317–321. https://doi.org/10.1021/nl035097c
  17. BehzadFotovvati, Amir Dehghanghadikolaei, and NavidNamdari, “Laser-Assisted coating techniques and surface modifications: A short review.” Particulate Science and Technology 39.6 (2021) 738-747. https://doi.org/10.1080/02726351.2020.1812778
  18. BehzadFotovvati, Steven F. Wayne,Gladius Lewis, Ebrahim, “A review on melt-pool characteristics in laser welding of metals.” Advances in Materials Science and Engineering 2018 (2018). https://doi.org/10.1155/2018/4920718
  19. Amir Dehghanghadikolaei, JamalAnsary, Reza Ghoreishi, “Sol-gel process applications: A mini-review.” Proc. Nat. Res. Soc 2.1 (2018) 02008-02029. https://doi: 10.11605/j.pnrs.201802008
  20. Pawlowski, The science and engineering of thermal spray coatings. John Wiley & Sons, West Sussex, England, 2008.p.85.
  21. Joseph Davis, ed. Handbook of thermal spray technology. ASM international, 2004.
  22. A Rabiei, DR Mumm, JW Hutchinson, R Schweinfest, M Ruhle, AG Evans, “Microstructure, deformation and cracking characteristics of thermal spray ferrous coatings.” Materials Science and Engineering: A 269.1-2 (1999) 152-165. https://doi.org/10.1016/S0921-5093(99)00132-X
  23. J Karthikeyan, CC Berndt, J Tikkanen, S Reddy, H Herman, “Plasma spray synthesis of nanomaterial powders and deposits.” Materials Science and Engineering: A 238.2 (1997) 275-286. https://doi.org/10.1016/S0921-5093(96)10568-2
  24. Naveen Kumar, Vikas Kumar Choubey, “Investigation of microstructure and Isothermal oxidation resistance of cermet HVOF coated on AISI316L at 900° C.” Results in Surfaces and Interfaces 14 (2024) 100173. https://doi.org/10.1016/j.rsurfi.2023.100173
  25. K Mishra, Naveen Kumar, S. B. Mishra, “Hot Corrosion Behaviour of Detonation Gun Sprayed Al2O3-40TiO2 Coating on Nickel Based Superalloys at 900° C.” Indian Journal of Materials Science 2014 (2014). https://doi.org/10.1155/2014/453607
  26. Petrovicova, L. S. Schadler, “Thermal spraying of polymers.” International materials review 47.4 (2002) 169-190. https://doi.org/10.1179/095066002225006566
  27. Srinivasa Kartik Nemani, Rama Kishore Annavarapu,Behrouz Mohammadian, Asif Raiyan, Jamie Heil, Md. Ashraful Haque, Ahmed Abdelaal, Hossein Sojoudi, “Surface modification of polymers: methods and applications.” Advanced Materials Interfaces 5.24 (2018) 1801247. https://doi.org/10.1002/admi.201801247
  28. LC Betancourt-Dougherty, RW Smith, “Effects of load and sliding speed on the wear behavior of plasma sprayed TiCNiCrBSi coatings.” Wear 217.1 (1998) 147-154. https://doi.org/10.1016/S0043-1648(97)00212-3
  29. Nitin P. Padture, Maurice Gell, Eric H. Jordan, “Thermal barrier coatings for gas-turbine engine applications.” Science 296.5566 (2002) 280-284. https://doi.org/10.1126/science.1068609
  30. Victor K Champagne, “The cold materials spray deposition process.” Woodhead Publishing Series in Metals and Surface Engineeringvol. 5(2007) Page i. https://doi.org/10.1533/9781845693787
  31. CJ Li, HT Wang, Q Zhang, GJ Yang, WY Li, HL Liao, “Influence of spray materials and their surface oxidation on the critical velocity in cold spraying.” Journal of Thermal Spray Technology 19 (2010) 95-101. https://doi.org/10.1007/s11666-009-9427-x
  32. WY Li, H Liao, CJ Li, HS Bang, C Coddet, “Numerical simulation of deformation behavior of Al particles impacting on Al substrate and effect of surface oxide films on interfacial bonding in cold spraying.” Applied Surface Science 253.11 (2007) 5084-509. https://doi.org/10.1016/j.apsusc.2006.11.020
  33. C Tsui, C. Doyle, T. W. Clyne, “Plasma sprayed hydroxyapatite coatings on titanium substrates Part 1: Mechanical properties and residual stress levels.” Biomaterials 19.22 (1998) 2015-2029. https://doi.org/10.1016/S0142-9612(98)00103-3
  34. T Schmidt, H Assadi, F Gartner, H Richter, T Stoltenhoff, H Kreye, Thomas Klassen, “From particle acceleration to impact and bonding in cold spraying.” Journal of thermal spray technology 18 (2009) 794-808. https://doi.org/10.1007/s11666-009-9357-7
  35. J Kawakita, H Katanoda, M Watanabe, K Yokoyama, S Kuroda, “Warm Spraying: An improved spray process to deposit novel coatings.” Surface and Coatings Technology 202.18 (2008) 4369-4373. https://doi.org/10.1016/j.surfcoat.2008.04.011
  36. Gedzevicius,AlgirdasVaclovasValiulis, “Analysis of wire arc spraying process variables on coatings properties.” Journal of Materials Processing Technology 175.1-3 (2006) 206-211. https://doi.org/10.1016/j.jmatprotec.2005.04.019
  37. Jin Kawakita, N Maruyama, S Kuroda, S Hiromoto, A Yamamoto, “Fabrication and mechanical properties of composite structure by warm spraying of Zr-base metallic glass.” Materials Transactions 49.2 (2008) 317-323. https://doi.org/10.2320/matertrans.T-MRA2007882
  38. C Tsui, C. Doyle, T. W. Clyne, “Plasma sprayed hydroxyapatite coatings on titanium substrates Part 2: optimisation of coating.” Biomaterials 19.22(1998) 2031-2043. https://doi.org/10.1016/S0142-9612(98)00104-5
  39. KeeHyun Kim, M Watanabe, J Kawakita, S Kuroda”Grain refinement in a single titanium powder particle impacted at high velocity.” ScriptaMaterialia 59.7 (2008) 768-771. https://doi.org/10.1016/j.scriptamat.2008.06.020
  40. PornthepChivavibul, Makoto Watanabe, Seiji Kuroda, Jin Kawakita, Masayuki Komatsu, Kazuto Sato, Junya Kitamura, “Development of WC-Co coatings deposited by warm spray process.” Journal of Thermal Spray Technology 17 (2008) 750-756. https://doi.org/10.1007/s11666-008-9271-4
  41. Skarvelis, G. D. Papadimitriou, “Plasma transferred arc composite coatings with self lubricating properties, based on Fe and Ti sulfides: Microstructure and tribological behavior.” Surface and Coatings Technology 203.10-11 (2009) 1384-1394. https://doi.org/10.1016/j.surfcoat.2008.11.010
  42. Takayuki Watanabe, Tadayuki Sato, AtsushiNezu, “Electrode phenomena investigation of wire arc spraying for preparation of Ti-Al intermetallic compounds.” Thin Solid Films 407.1-2 (2002) 98-103. https://doi.org/10.1016/S0040-6090(02)00019-6
  43. HosseinSojoudi, Sanha Kim, Hangbo Zhao, Rama Kishore Annavarapu, DhanushkodiMariappan, A John Hart,Gareth H. McKinley, Karen K. Gleason, “Stable wettability control of nanoporous microstructures by iCVD coating of carbon nanotubes.” ACS applied materials & interfaces 9.49 (2017) 43287-43299. https://doi.org/10.1021/acsami.7b13713
  44. Nemani, SrinivasaKartik, HosseinSojoudi, “Barrier performance of CVD graphene films using a facile P3HT thin film optical transmission test.” Journal of Nanomaterials 2018 (2018). https://doi.org/10.1155/2018/9681432
  45. Amin Joukar, Jwalant Mehta, David Marks, Vijay K. Goel, “Lumbar-sacral destruction fixation biomechanics: a finite element study.” The Spine Journal 17.11 (2017) S335. https://doi.org/10.1016/j.spinee.2017.10.062
  46. AtiehMoridi, SM Hassani-Gangaraj, M Guagliano, M Dao, “Cold spray coating: review of material systems and future perspectives.” Surface Engineering 30.6 (2014) 369-395. https://doi.org/10.1179/1743294414Y.0000000270
  47. AlexandreSabard, H. L. de Villiers Lovelock, Tanvir Hussain, “Microstructural evolution in solution heat treatment of gas-atomized Al alloy (7075) powder for cold spray.”Journal of Thermal Spray Technology 27 (2018) 145-158. https://doi.org/10.1007/s11666-017-0662-2
  48. Steven W. Dean, John K. Potte, Richard a. Yetter, Tim David, Victor Kenneth Champegne Jr., Matthew Trexler, “Energetic intermetallic materials formed by cold spray.” Intermetallics 43 (2013) 121-130.https://doi.org/10.1016/j.intermet.2013.07.019
  49. Bao, Z. Deng, S. Zhang, Z. Ji, H.  Zhang, “Next-generation composite coating system: nanocoating,” Frontiers in Materials 6 (2019) 456324. https://doi.org/10.3389/fmats.2019.00072
  50. Qiang Zhu, Ming Hui Chua, Pin Jin Ong, JohnathanJoo Cheng Lee, Kang Le Osmund Chin,Suxi Wang, Dan Kai, Rong Ji, Junhua Kong, Zhaogang Dong, Jianwei Xu, Xian Jun Loh, “Recent advances in nanotechnology-based functional coatings for the built environment.” Materials Today Advances 15 (2022) 100270. https://doi.org/10.1016/j.mtadv.2022.100270
  51. YuxingBai, Haiping Zhang,Yuanyuan ShaoHui Zhang, Jesse Zhu, “Recent progresses of superhydrophobic coatings in different application fields: An overview.” Coatings 11.2 (2021) 116. https://doi.org/10.3390/coatings11020116
  52. IndraneeDas, Goutam De, “Zirconia based superhydrophobic coatings on cotton fabrics exhibiting excellent durability for versatile use.” Scientific reports 5.1 (2015) 18503. https://doi.org/10.1038/srep18503
  53. Venkataraj, J. Geurts, H. Weis, O. Kappertz, Njoroge, W. K. Jayavel,Matthias Wuttig, “Structural and optical properties of thin lead oxide films produced by reactive direct current magnetron sputtering.” Journal of Vacuum Science & Technology A: Vacuum, Surfaces, and Films 19.6 (2001) 2870-2878. https://doi.org/10.1116/1.1410948
  54. Pengtao Gao, L.J Meng, M.P dos Santos, V Teixeira, M Andritschky, “Characterisation of ZrO2 films prepared by RF reactive sputtering at different O2 concentrations in the sputtering gases.” Vacuum 56.2 (2000) 143-148. https://doi.org/10.1016/S0042-207X(99)00199-2
  55. M. Lopez, N. A. Suvorova, E. A. Irene, A. A. Suvorova, Saunders, “ZrO2 film interfaces with Si and SiO2.” Journal of applied physics 98.3 (2005). https://doi.org/10.1063/1.1994938
  56. H.Zhang, C. Y. Ma, Q. Y. Zhang, “Scaling behavior and structure transition of ZrO2 films deposited by RF magnetron sputtering.” Vacuum 83.11 (2009) 1311-1316. https://doi.org/10.1016/j.vacuum.2009.04.041
  57. KaykhosrowKhojier, HadiSavaloni, Fatemeh Jafari, “Structural, electrical, and decorative properties of sputtered zirconium thin films during post-annealing process.” Journal of Theoretical and Applied Physics 7 (2013) 1-7. https://doi.org/10.1186/2251-7235-7-55
  58. Shi Gang Wu, Hong Ying Zhang, Guang Lei Tian, Zhi Lin Xia, JianDa Shao, ZhengXiu Fan, “Y2O3 stabilized ZrO2 thin films deposited by electron-beam evaporation: Optical properties, structure and residual stresses.” Vacuum 83.2 (2008) 366-371. https://doi.org/10.1016/j.apsusc.2006.02.044
  59. Matsuoka, S. Isotani, J.F.D. Chubaci, S. Miyake, Y.  Setsuhara, K. Ogata, Kuratani, “Influence of ion energy and arrival rate on x-ray crystallographic properties of thin ZrO x films prepared on Si (111) substrate by ion-beam assisted deposition.” Journal of Applied Physics 88.6 (2000) 3773-3775. https://doi.org/10.1063/1.1286108
  60. Hasuyama, Y. Shima, K.  Baba, G.K. Wolf, H.  Martin, F. Stippich, “Adhesive and corrosion-resistant zirconium oxide coatings on stainless steel prepared by ion beam assisted deposition.” Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms 127 (1997) 827-831. https://doi.org/10.1016/S0168-583X(97)00015-3
  61. Sethi, P. Sunal, M.W. Horn, M.T.Lanagan, “Influence of reactive sputter deposition conditions on crystallization of zirconium oxide thin films.” Journal of Vacuum Science & Technology A 27.3 (2009) 577-583. https://doi.org/10.1116/1.3119669
  62. DeplaDiederik, StijnMahieu, Reactive sputter deposition. Vol. 109. Berlin: Springer, 2008.https://doi.org/10.1007/978-3-540-76664-3
  63. JoonheeJeong, Kijung Yong, “Temperature programmed desorption study of Zr-diethylamido precursor for ZrO2 CVD.” Journal of crystal growth 254.1-2 (2003) 65-69. https://doi.org/10.1116/1.3119669
  64. G. Gordon, J. Becker, D. Hausmann, S. Suh, “Vapor deposition of metal oxides and silicates: Possible gate insulators for future microelectronics.” Chemistry of materials 13.8 (2001) 2463-2464. https://doi.org/10.1021/cm010145k
  65. D. Shen, X. L. Deng, H. P. Feng, R. Q. Gong, L. Ren, Y. B. Wang, Y. L. Zhang, W. N. Du, M. Y. Zhang, Crystallization behaviours regulations and thermostability enhancement strategy of polypropylene composites modified by dispersed rice husk charcoal, Journal of Polymer Research, 10.1007/s10965-024-04028-x, 31, 7, (2024).
  66. Palanisamy, S., Murugesan, T. M., Palaniappan, M., Santulli, C., Ayrilmis, N., and Alavudeen, A. (2024). “Selection and processing of natural fibers and nanocellulose for biocomposite applications: A brief review,” BioResources 19(1), 1789-1813.
  67. Palanisamy, S., Murugesan, T. M., Palaniappan, M., Santulli, C., and Ayrilmis, N. (2023). “Use of hemp waste for the development of mycelium-grown matrix biocomposites: A concise bibliographic review,” BioResources 18(4), 8771-8780.

Special Issue Open Access Review Article
Volume 12
Special Issue 06
Received 17/07/2024
Accepted 29/07/2024
Published 08/10/2024


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