Above Durability: Special Advantages of PTFE-Reinforced Ni-P Coatings for Corrosion Protection

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Above Durability: Special Advantages of PTFE-Reinforced Ni-P Coatings for Corrosion Protection

Onur Güler

The integration of PTFE (polytetrafluoroethylene) within nickel-phosphorus (Ni-P) coatings has sparked significant interest in the realm of corrosion protection. This compelling synthesis not only fortifies corrosion resistance but also introduces a novel interplay between PTFE particles and the Ni-P matrix. The study systematically explores the microstructural intricacies, shedding light on how this composite coating mitigates corrosion challenges. Impressively, the resulting coating demonstrates outstanding resilience against corrosion and concurrently exhibits reduced friction coefficients. This review champions the strides made in the development of PTFE-infused Ni-P coatings, advocating for their pivotal role in addressing corrosion concerns across diverse industrial applications.

Keywords
Ni-P-PTFE Composite Coatings, Corrosion Resistance, Microstructural Development, PTFE Distribution, Surface Enhancement

Published online 1/5/2026, 32 pages

Citation: Onur Güler, Above Durability: Special Advantages of PTFE-Reinforced Ni-P Coatings for Corrosion Protection, Materials Research Foundations, Vol. 188, pp 161-192, 2026

DOI: https://doi.org/10.21741/9781644903919-9

Part of the book on Advances in Corrosion Science and Surface Engineering

References
[1] A. Brenner, D.E. Couch, E.K. Williams, Electrodeposition of alloys of phosphorus with nickel or cobalt, J. Res. Nat. Bur. Stand 44 (1950) 109.
[2] A. Brenner, G.E. Riddell, Nickel plating by chemical reduction, US Patent US2532282 (1950).
[3] T. Mimani, S.M. Mayanna, The effect of microstructure on the corrosion behaviour of electroless NiP alloys in acidic media, Surf Coat Technol 79 (1996) 246–251. https://doi.org/10.1016/0257-8972(95)02446-8
[4] W. Sha, J.S. Pan, Electroplating NiP films and their corrosion property, J Alloys Compd 182 (1992) L1–L3. https://doi.org/10.1016/0925-8388(92)90568-T
[5] C. Sun, S. Shuang, H. Zeng, V. Fattahpour, M. Mahmoudi, J.-L. Luo, Investigation of Corrosion Properties of a High-Phosphorus Ni-P Coating and Corrosion Resistant Alloys in 3.5 wt.% NaCl Solution, (2018). https://dx.doi.org/ (accessed February 10, 2024).
[6] A. Sosa Domínguez, J.J. Pérez Bueno, I. Zamudio Torres, M.L. Mendoza López, Characterization and corrosion resistance of electroless black Ni-P coatings of double black layer on carbon steel, Surf Coat Technol 326 (2017) 192–199. https://doi.org/10.1016/J.SURFCOAT.2017.07.044
[7] B. Qin, L. Li, J. Wang, G. Chen, Z. Huang, Y. Liu, J. Dou, Erosion-Corrosion Behavior of Electroless Ni–P Coating on M2052 Alloy in Artificial Seawater, ISIJ International 62 (2022) 550–560. https://doi.org/10.2355/ISIJINTERNATIONAL.ISIJINT-2021-359
[8] B. Jiang, S.L. Jiang, A.L. Ma, Y.G. Zheng, Erosion-corrosion behavior of electroless Ni-P coating on copper-nickel alloy in 3.5 wt.% sodium chloride solution, J Mater Eng Perform 23 (2014) 230–237. https://doi.org/10.1007/S11665-013-0763-0/FIGURES/11
[9] H. Ashassi-Sorkhabi, S.H. Rafizadeh, Effect of coating time and heat treatment on structures and corrosion characteristics of electroless Ni–P alloy deposits, Surf Coat Technol 176 (2004) 318–326. https://doi.org/10.1016/S0257-8972(03)00746-1
[10] Y. Su, B. Zhou, L. Liu, J. Lian, G. Li, Electromagnetic shielding and corrosion resistance of electroless Ni-P and Ni-P-Cu coatings on polymer/carbon fiber composites, Polym Compos 36 (2015) 923–930. https://doi.org/10.1002/PC.23012
[11] D. Ahmadkhaniha, F. Eriksson, P. Leisner, C. Zanella, Effect of SiC particle size and heat-treatment on microhardness and corrosion resistance of NiP electrodeposited coatings, J Alloys Compd 769 (2018) 1080–1087. https://doi.org/10.1016/J.JALLCOM.2018.08.013
[12] S.H.M. Anijdan, M. Sabzi, M.R. Zadeh, M. Farzam, The influence of pH, rotating speed and Cu content reinforcement nano-particles on wear/corrosion response of Ni-P-Cu nano-composite coatings, Tribol Int 127 (2018) 108–121. https://doi.org/10.1016/J.TRIBOINT.2018.05.040
[13] J.N. Balaraju, Kalavati, K.S. Rajam, Influence of particle size on the microstructure, hardness and corrosion resistance of electroless Ni–P–Al2O3 composite coatings, Surf Coat Technol 200 (2006) 3933–3941. https://doi.org/10.1016/J.SURFCOAT.2005.03.007
[14] G. Pedrizzetti, L. Paglia, V. Genova, S. Cinotti, M. Bellacci, F. Marra, G. Pulci, Microstructural, mechanical and corrosion characterization of electroless Ni-P composite coatings modified with ZrO2 reinforcing nanoparticles, Surf Coat Technol 473 (2023) 129981. https://doi.org/10.1016/J.SURFCOAT.2023.129981
[15] F. Bigdeli, S.R. Allahkaram, An investigation on corrosion resistance of as-applied and heat treated Ni–P/nanoSiC coatings, Mater Des 30 (2009) 4450–4453. https://doi.org/10.1016/J.MATDES.2009.04.020
[16] H. Luo, M. Leitch, Y. Behnamian, Y. Ma, H. Zeng, J.L. Luo, Development of electroless Ni–P/nano-WC composite coatings and investigation on its properties, Surf Coat Technol 277 (2015) 99–106. https://doi.org/10.1016/J.SURFCOAT.2015.07.011
[17] J.N. Balaraju, Kalavati, K.S. Rajam, Influence of particle size on the microstructure, hardness and corrosion resistance of electroless Ni–P–Al2O3 composite coatings, Surf Coat Technol 200 (2006) 3933–3941. https://doi.org/10.1016/J.SURFCOAT.2005.03.007
[18] D.R. Dhakal, Y.K. Kshetri, B. Chaudhary, T.H. Kim, S.W. Lee, B.S. Kim, Y. Song, H.S. Kim, H.H. Kim, Particle-size-dependent anticorrosion performance of the Si3 N4-nanoparticle-incorporated electroless Ni-P coating, Coatings 12 (2022) 9. https://doi.org/10.3390/COATINGS12010009/S1
[19] S.S. Tulsi, Composite PTFE-Nickel coatings for low friction applications, Mater Des 4 (1983) 919–923. https://doi.org/10.1016/0261-3069(84)90004-9
[20] S.S. Tulsi, Electroless Nickel-PTFE Composite Coatings, Transactions of the IMF 61 (1983) 142–149. https://doi.org/10.1080/00202967.1983.11870654
[21] Y. Liu, Q.Z.-P. and surface finishing, undefined 2004, Study of PTFE content & anti-corrosion properties of electroless Ni-P-PTFE coatings, Sterc.Org (2004). https://sterc.org/pdf/psf2004/040448.pdf (accessed February 10, 2024).
[22] A. Sharma, A.K. Singh, Electroless Ni-P-PTFE-Al2O3 dispersion nanocomposite coating for corrosion and wear resistance, J Mater Eng Perform 23 (2014) 142–151. https://doi.org/10.1007/S11665-013-0710-0/FIGURES/9
[23] Z. Chen, L. Zhu, L. Ren, J. Liu, Electroless Plating of Ni-P and Ni-P-PTFE on Micro-Arc Oxidation Coatings for Improved Tribological Performance, Materials Research 25 (2022) e20220096. https://doi.org/10.1590/1980-5373-MR-2022-0096
[24] Y. Li, L. Zheng, B. Sun, C. Zhang, H. Zhao, Z. Qu, X. Xu, Preparation and characterization of Ni-P-Al2O3-PTFE nanocomposite coatings by unidirectional jet electrodeposition, Mater Today Commun 35 (2023) 105647. https://doi.org/10.1016/J.MTCOMM.2023.105647
[25] H. Zhang, J. Zou, N. Lin, B. Tang, REVIEW ON ELECTROLESS PLATING Ni–P COATINGS FOR IMPROVING SURFACE PERFORMANCE OF STEEL, Https://Doi.Org/10.1142/S0218625X14300020 21 (2014). https://doi.org/10.1142/S0218625X14300020
[26] S. Cao, M. Zou, B. Zhao, H. Gao, G. Wang, Investigation of corrosion and fouling resistance of Ni–P-nanoparticles composite coating using online monitoring technology, International Journal of Thermal Sciences 184 (2023) 107953. https://doi.org/10.1016/J.IJTHERMALSCI.2022.107953
[27] K.W. Liew, H.J. Kong, K.O. Low, C.K. Kok, D. Lee, The effect of heat treatment duration on mechanical and tribological characteristics of Ni–P–PTFE coating on low carbon high tensile steel, Materials & Design (1980-2015) 62 (2014) 430–442. https://doi.org/10.1016/J.MATDES.2014.05.047
[28] R. Asmatulu, Nanocoatings for corrosion protection of aerospace alloys, Corrosion Protection and Control Using Nanomaterials (2012) 357–374. https://doi.org/10.1533/9780857095800.2.357
[29] R. Kannan, M. Selvambikai, S. Jyothi, E. Selvakumar, S. Venkateswaran, E. Shobhana, P. Devaki, An investigations on structural, mechanical and magnetic properties of electroplated NiP nano crystalline thin films for aerospace and automotive applications, Mater Res Express 6 (2019) 116435. https://doi.org/10.1088/2053-1591/AB4AF7
[30] C.K. Lee, Structure, electrochemical and wear-corrosion properties of electroless nickel–phosphorus deposition on CFRP composites, Mater Chem Phys 114 (2009) 125–133. https://doi.org/10.1016/J.MATCHEMPHYS.2008.08.088
[31] A. Sharma, A.K. Singh, Corrosion and wear study of Ni-P-PTFE-Al2O3 coating: The effect of heat treatment, Central European Journal of Engineering 4 (2014) 80–89. https://doi.org/10.2478/S13531-013-0137-2/MACHINEREADABLECITATION/RIS
[32] J. Tian, X. Liu, J. Wang, X. Wang, Y. Yin, Electrochemical anticorrosion behaviors of the electroless deposited Ni–P and Ni–P–PTFE coatings in sterilized and unsterilized seawater, Mater Chem Phys 124 (2010) 751–759. https://doi.org/10.1016/J.MATCHEMPHYS.2010.07.053
[33] Z. Li, C. Bian, L. Hu, Exploration of the Corrosion Behavior of Electroless Plated Ni-P Amorphous Alloys via X-ray Photoelectron Spectroscopy, Molecules 2023, Vol. 28, Page 377 28 (2023) 377. https://doi.org/10.3390/MOLECULES28010377
[34] M. Farhan, O. Fayyaz, M.G. Qamar, R.A. Shakoor, J. Bhadra, N.J. Al-Thani, Mechanical and corrosion characteristics of TiC reinforced Ni-P based nanocomposite coatings, Mater Today Commun 36 (2023) 106901. https://doi.org/10.1016/J.MTCOMM.2023.106901
[35] Y. Wu, Z. Zhang, Z. Leng, J. Zhang, S. Yang, W. Shen, K. Xu, H. Zhu, Y. Liu, Improvement of the corrosion resistance of amorphous Ni-P coatings modified by a laser–electrodeposition hybrid process: Effect of morphology evolution on the electrochemical corrosion behavior, Appl Surf Sci 624 (2023) 157016. https://doi.org/10.1016/J.APSUSC.2023.157016
[36] Scopus – Document search | Signed in, (n.d.). https://www.scopus.com/search/form.uri?display=authorLookup#basic (accessed February 10, 2024).
[37] Q. Zhao, Y. Liu, H. Müller-Steinhagen, G. Liu, Graded Ni–P–PTFE coatings and their potential applications, Surf Coat Technol 155 (2002) 279–284. https://doi.org/10.1016/S0257-8972(02)00116-0
[38] J. Hou, S. Wang, Z. Zhou, The Effect of Ni-P Alloy Pre-Plating on the Performance of Ni-P/Ni-P-PTFE Composite Coatings, Key Eng Mater 561 (2013) 537–541. https://doi.org/10.4028/WWW.SCIENTIFIC.NET/KEM.561.537
[39] A. Zarebidaki, S.R. Allahkaram, Porosity measurement of electroless Ni-P coatings reinforced by CNT or SiC particles, Surface Engineering 28 (2012) 400–405. https://doi.org/10.1179/1743294411Y.0000000087/ASSET/IMAGES/LARGE/10.1179_1743294411Y.0000000087-FIG6.JPEG
[40] H.Y.- Bin, W.C.- Sheng, L. De-Gang, L.Z.- Jie, S.X.- Jun, Z.Q.- Yong, L.Y.- Hui, Study on Corrosion Resistance of Electroless Plating Ni-P Complex Coating, (2005). https://dx.doi.org/ (accessed February 10, 2024).
[41] P. Sahoo, Optimization of electroless Ni?P coatings based on multiple roughness characteristics, Surface and Interface Analysis 40 (2008) 1552–1561. https://doi.org/10.1002/SIA.2945
[42] R. Elansezhian, B. Ramamoorthy, P. Kesavan Nair, Effect of surfactants on the mechanical properties of electroless (Ni–P) coating, Surf Coat Technol 203 (2008) 709–712. https://doi.org/10.1016/J.SURFCOAT.2008.08.021
[43] C.S. Chang, K.H. Hou, M. Der Ger, C.K. Chung, J.F. Lin, Effects of annealing temperature on microstructure, surface roughness, mechanical and tribological properties of Ni–P and Ni–P/SiC films, Surf Coat Technol 288 (2016) 135–143. https://doi.org/10.1016/J.SURFCOAT.2016.01.020
[44] M. Nishira, K. Yamagishi, H. Matsuda, M. Suzuki, O. Takano, Uniform Dispersibility of PTFE Particles in Electroless Composite Plating, Transactions of the IMF 74 (1996) 62–64. https://doi.org/10.1080/00202967.1996.11871095
[45] I.R. Mafi, C. Dehghanian, Comparison of the coating properties and corrosion rates in electroless Ni–P/PTFE composites prepared by different types of surfactants, Appl Surf Sci 257 (2011) 8653–8658. https://doi.org/10.1016/J.APSUSC.2011.05.043
[46] Y. Liu, Q. Zhao, Effects of surfactants on the PTFE particle sizes in electroless plating Ni-P-PTFE coatings, Transactions of the IMF 81 (2003) 168–171. https://doi.org/10.1080/00202967.2003.11871529
[47] Q. Zhao, Y. Liu, Investigation of graded Ni–Cu–P–PTFE composite coatings with antiscaling properties, Appl Surf Sci 229 (2004) 56–62. https://doi.org/10.1016/J.APSUSC.2004.01.044
[48] G. Straffelini, D. Colombo, A. Molinari, Surface durability of electroless Ni–P composite deposits, Wear 236 (1999) 179–188. https://doi.org/10.1016/S0043-1648(99)00273-2
[49] A. Sharma, A.K. Singh, Corrosion and wear resistance study of Ni-P and Ni-P-PTFE nanocomposite coatings, Central European Journal of Engineering 1 (2011) 234–243. https://doi.org/10.2478/S13531-011-0023-8/MACHINEREADABLECITATION/RIS
[50] H. Omidvar, M. Sajjadnejad, G. Stremsdoerfer, Y. Meas, A. Mozafari, Manufacturing Ternary Alloy NiBP-PTFE Composite Coatings by Dynamic Chemical Plating Process, Materials and Manufacturing Processes 31 (2016) 31–36. https://doi.org/10.1080/10426914.2014.994753
[51] A. Kumar, A. Singh, M. Kumar, D. Kumar, S. Barthwal, Study on thermal stability of electroless deposited Ni-Co-P alloy thin film, Journal of Materials Science: Materials in Electronics 22 (2011) 1495–1500. https://doi.org/10.1007/S10854-011-0336-7/FIGURES/6
[52] G. Zhao, R. Wang, S. Liu, D. Wu, Y. Zhang, T. Wang, Y. Zou, Study on the role of element Mo in improving thermal stability and corrosion resistance of amorphous Ni-P deposit, J Non Cryst Solids 549 (2020) 120358. https://doi.org/10.1016/J.JNONCRYSOL.2020.120358
[53] P. Sahoo, S.K. Das, Tribology of electroless nickel coatings – A review, Mater Des 32 (2011) 1760–1775. https://doi.org/10.1016/J.MATDES.2010.11.013
[54] G.O. Boakye, A.M. Ormsdóttir, B.G. Gunnarsson, S. Irukuvarghula, R. Khan, S.N. Karlsdóttir, The Effect of Polytetrafluoroethylene (PTFE) Particles on Microstructural and Tribological Properties of Electroless Ni-P+PTFE Duplex Coatings Developed for Geothermal Applications, Coatings 2021, Vol. 11, Page 670 11 (2021) 670. https://doi.org/10.3390/COATINGS11060670
[55] P. Peelers, G. V.D. Hoorn, T. Daenen, A. Kurowski, G. Staikov, Properties of electroless and electroplated Ni–P and its application in microgalvanics, Electrochim Acta 47 (2001) 161–169. https://doi.org/10.1016/S0013-4686(01)00546-1
[56] P.G. Engleman, N.B. Dahotre, C.A. Blue, D.C. Harper, R. Ott, HIGH DENSITY INFRARED PROCESSING OF WC/Ni–11P COMPOSITE COATINGS, Https://Doi.Org/10.1179/026708401225002811 18 (2002) 113–119. https://doi.org/10.1179/026708401225002811
[57] S. Papavinasam, R.W. Revie, Review of standards for evaluating coatings to control external corrosion of pipelines, Corrosion Reviews 26 (2008) 295–371. https://doi.org/10.1515/CORRREV.2008.295/MACHINEREADABLECITATION/RIS
[58] M. Der Ger, B.J. Hwang, Effect of surfactants on codeposition of PTFE particles with electroless Ni-P coating, Mater Chem Phys 76 (2002) 38–45. https://doi.org/10.1016/S0254-0584(01)00513-2
[59] M.-D. Ger, B.J. Hwang, Role of Surfactants in Codeposition of PTFE Particles with Electroless Ni-P Coating, Journal of the Chinese Institute of Chemical Engineers 32 (2001) 503–509. https://doi.org/10.6967/JCICE.200111.0503
[60] Q. Zhao, Y. Liu, Electroless Ni-Cu-P-PTFE composite coatings and their anticorrosion properties, Surf Coat Technol 200 (2005) 2510–2514. https://doi.org/10.1016/j.surfcoat.2004.06.011
[61] M. Tajbakhsh, O. Yaghobizadeh, M. Farhadi Nia, Investigation of the physical and mechanical properties of Ni–P and Ni–P–PTFE nanocomposite coatings deposited on aluminum alloy 7023, Proceedings of the Institution of Mechanical Engineers, Part E: Journal of Process Mechanical Engineering 233 (2019) 94–103. https://doi.org/10.1177/0954408917744159
[62] Q. Zhao, Y. Liu, E.W. Abel, Effect of Cu content in electroless Ni–Cu–P–PTFE composite coatings on their anti-corrosion properties, Mater Chem Phys 87 (2004) 332–335. https://doi.org/10.1016/J.MATCHEMPHYS.2004.05.028
[63] S. Armyanov, J. Georgieva, D. Tachev, E. Valova, N. Nyagolova, S. Mehta, D. Leibman, A. Ruffini, Electroless deposition of Ni-Cu-P alloys in acidic solutions, Electrochemical and Solid-State Letters 2 (1999) 323–325. https://doi.org/10.1149/1.1390824/XML
[64] M. Lee, J. Park, K. Son, D. Kim, K. Kim, M. Kang, Electroless Ni-P-PTFE Composite Plating with Rapid Deposition and High PTFE Concentration through a Two-Step Process, Coatings 2022, Vol. 12, Page 1199 12 (2022) 1199. https://doi.org/10.3390/COATINGS12081199
[65] H.H. Sheu, S.Y. Jian, M.H. Lin, C.I. Hsu, K.H. Hou, M. Der Ger, Electroless Ni-P/PTFE Self-Lubricating Composite Thin Films Applied for Medium-carbon Steel Substrate, Int J Electrochem Sci 12 (2017) 5464–5482. https://doi.org/10.20964/2017.06.30
[66] P. ping Gao, M. lian Gao, A. ru Wu, X. bo Wu, C. xun Liu, Y. Zhang, H. kun Zhou, X. min Peng, Z. yong Xie, Electrochemical characteristics of electroplating and impregnation Ni-P/SiC/PTFE composite coating on 316L stainless steel, J Cent South Univ 27 (2020) 3615–3624. https://doi.org/10.1007/S11771-020-4508-6/METRICS
[67] G.O. Boakye, A.M. Ormsdóttir, B.G. Gunnarsson, S. Irukuvarghula, R. Khan, S.N. Karlsdóttir, The Effect of Polytetrafluoroethylene (PTFE) Particles on Microstructural and Tribological Properties of Electroless Ni-P+PTFE Duplex Coatings Developed for Geothermal Applications, Coatings 2021, Vol. 11, Page 670 11 (2021) 670. https://doi.org/10.3390/COATINGS11060670
[68] C. Huang, Z. Zhang, J. yan, L. Sun, J. Wang, Enhancing wear and corrosion resistance of electroless Ni-P coatings in CO2-saturated NaCl solution through polytetrafluoroethylene incorporation, Corros Sci 226 (2024) 111620. https://doi.org/10.1016/J.CORSCI.2023.111620
[69] X. Liang, P. Wu, L. Lan, Y. Wang, Y. Ning, Y. Wang, Y. Qin, Effect of Polytetrafluoroethylene (PTFE) Content on the Properties of Ni-Cu-P-PTFE Composite Coatings, Materials 2023, Vol. 16, Page 1966 16 (2023) 1966. https://doi.org/10.3390/MA16051966
[70] S.; Mei, C.; Zhou, Z.; Hu, Z.; Xiao, Q.; Zheng, X. Chai, S. Mei, C. Zhou, Z. Hu, Z. Xiao, Q. Zheng, X. Chai, Preparation of a Ni-P-nanoPTFE Composite Coating on the Surface of GCr15 Steel for Spinning Rings via a Defoamer and Transition Layer and Its Wear and Corrosion Resistance, Materials 2023, Vol. 16, Page 4427 16 (2023) 4427. https://doi.org/10.3390/MA16124427
[71] Z. Ma, B. Jiang, D. Drummer, L. Zhang, Influence of phosphorous acid concentration on the self-lubricating properties of electroformed Ni-P-PTFE ternary composites, Surf Coat Technol 477 (2024) 130375. https://doi.org/10.1016/J.SURFCOAT.2024.130375
[72] Y. Li, L. Zheng, X. Xu, Y. Zhang, M. Zhang, M. Liu, Effect of current density on properties of Ni–P-Al2O3-PTFE nanocomposite coatings by jet electrodeposition, International Journal of Advanced Manufacturing Technology 125 (2023) 5743–5755. https://doi.org/10.1007/S00170-023-11088-8/FIGURES/13
[73] G. Oppong Boakye, E.O. Straume, D. Kovalov, S.N. Karlsdottir, Wear-reducing nickel-phosphorus and graphene oxide-based composite coatings: Microstructure and corrosion behavior in high temperature geothermal environment, Corros Sci 209 (2022) 110809. https://doi.org/10.1016/J.CORSCI.2022.110809
[74] B. Vasconcelos, R. Serra, J. Oliveira, C. Fonseca, Characterization and Tribological Behavior of Electroless-Deposited Ni-P-PTFE Films on NBR Substrates for Dynamic Contact Applications, Coatings 2022, Vol. 12, Page 1410 12 (2022) 1410. https://doi.org/10.3390/COATINGS12101410
[75] Y. Li, L. Zheng, M. Liu, Z. Qu, X. Xu, Y. Zhang, M. Zhang, H. Han, Z. Yang, Effect of duty ratio on the performance of pulsed electrodeposition Ni–P–Al2O3–PTFE nanocomposite coatings, Appl Phys A Mater Sci Process 128 (2022) 1–11. https://doi.org/10.1007/S00339-022-05787-4/FIGURES/12
[76] P. Kramer, K.S. Williams, K.A. Schultz, F. Friedersdorf, D.A. Jackson, T. Sweitzer, Effect of Mechanical Stress and Environmental Conditions on Degradation of Aerospace Coatings That Guard Against Atmospheric Corrosion, (2018). https://dx.doi.org/ (accessed February 10, 2024).
[77] J.T. Staley, Corrosion of Aluminium Aerospace Alloys, Materials Science Forum 877 (2017) 485–491. https://doi.org/10.4028/WWW.SCIENTIFIC.NET/MSF.877.485
[78] A. Kvryan, N.A. Carter, H.K. Trivedi, M.F. Hurley, Accelerated Testing to Investigate Corrosion Mechanisms of Carburized and Carbonitrided Martensitic Stainless Steel for Aerospace Bearings in Harsh Environments, Tribology Transactions 63 (2020) 265–279. https://doi.org/10.1080/10402004.2019.1685726
[79] R.R. Boyer, Titanium for aerospace: Rationale and applications, Advanced Performance Materials 2 (1995) 349–368. https://doi.org/10.1007/BF00705316/METRICS
[80] M.A. Maleque, S.Y. Cetin, M. Hassan, M. Hafiz Sulaiman, A.H. Rosli, A systematic review on corrosive-wear of automotive components materials, Jurnal Tribologi 35 (2022) 33–49.
[81] C. Author, ORIGINAL ARTICLES Magnesium and Aluminum Alloys in Automotive Industry, J Appl Sci Res 8 (2012) 4865–4875. http://www.worldaluminium.org, (accessed February 10, 2024).
[82] D.M. Aylor, R.J. Ferrara, R.A. Hays, R.M. Kain, Crevice Corrosion Performance of Candidate Naval Ship Seawater Valve Materials in Quiescent and Flowing Natural Seawater, (1999). https://dx.doi.org/ (accessed February 10, 2024).
[83] M.S. Thomas, A. Okeremi, External Pitting And Crevice Corrosion Of 316L Stainless Steel Instrument Tubing In Marine Environments And Proposed Solution, (2008). https://dx.doi.org/ (accessed February 10, 2024).
[84] W. Ding, A. Bonk, T. Bauer, Corrosion behavior of metallic alloys in molten chloride salts for thermal energy storage in concentrated solar power plants: A review, Front Chem Sci Eng 12 (2018) 564–576. https://doi.org/10.1007/S11705-018-1720-0/METRICS
[85] W.S. Tait, Controlling Corrosion of Chemical Processing Equipment, Handbook of Environmental Degradation Of Materials: Third Edition (2018) 583–600. https://doi.org/10.1016/B978-0-323-52472-8.00028-9
[86] T.J. Glover, Application of stainless steels in chemical plant corrosive environments, Anti-Corrosion Methods and Materials 29 (1982) 11–12. https://doi.org/10.1108/EB007190/FULL/XML
[87] J. Bhandari, F. Khan, R. Abbassi, V. Garaniya, R. Ojeda, Modelling of pitting corrosion in marine and offshore steel structures – A technical review, J Loss Prev Process Ind 37 (2015) 39–62. https://doi.org/10.1016/J.JLP.2015.06.008
[88] G.E. Moller, The Successful Use of Austenitic Stainless Steels in Sea Water, Proceedings of the Annual Offshore Technology Conference 1976-May (1976) 959–976. https://doi.org/10.4043/2699-MS
[89] S.X. Li, R. Akid, Corrosion fatigue life prediction of a steel shaft material in seawater, Eng Fail Anal 34 (2013) 324–334. https://doi.org/10.1016/J.ENGFAILANAL.2013.08.004.
[90] Phull B, Abdullahi AA, Chapter 09209 – Marine Corrosion, Reference Module in Materials Science and Materials Engineering (2016) 1–39. https://doi.org/10.1016/B978-0-12-803581-8.09209-2
[91] A.A. Daniyan, T.L. Akpomejero, O.O. Ige, P.A. Olubambi, Corrosion Prevention of Biomedical Implants: Surface Coating Techniques Perspective, ChemistrySelect 8 (2023) e202300223. https://doi.org/10.1002/SLCT.202300223
[92] M.T. Mohammed, Z.A. Khan, A.N. Siddiquee, Surface Modifications of Titanium Materials for developing Corrosion Behavior in Human Body Environment: A Review, Procedia Materials Science 6 (2014) 1610–1618. https://doi.org/10.1016/J.MSPRO.2014.07.144
[93] N.S. Radhi, Z. Al-Khafaji, INVESTIGATION BIOMEDICAL CORROSION OF IMPLANT ALLOYS IN PHYSIOLOGICAL ENVIRONMENT, SCOPUS Indexed Journal Www.Tjprc.Org (n.d.). www.tjprc.org (accessed February 10, 2024).
[94] B.W. Waters, J.M. Tatum, Y.C. Hung, Effect of chlorine-based sanitizers properties on corrosion of metals commonly found in food processing environment, J Food Eng 121 (2014) 159–165. https://doi.org/10.1016/J.JFOODENG.2013.08.027
[95] A. Montanari, Basic Principles of Corrosion of Food Metal Packaging, in(2015) 105–132. https://doi.org/10.1007/978-3-319-14827-4_6
[96] G.K. Deshwal, N.R. Panjagari, Review on metal packaging: materials, forms, food applications, safety and recyclability, J Food Sci Technol 57 (2020) 2377–2392. https://doi.org/10.1007/S13197-019-04172-Z/FIGURES/5