Corrosion Inhibition Efficiency Investigation of Yttrium Oxide Nanoparticles Coated on Carbon Steel Alloy

Main Article Content

Maha J. Hassin
https://orcid.org/0009-0006-3411-0410
Taghried A. Salman
https://orcid.org/0000-0003-0158-7352

Abstract

Metal oxide nanoparticles demonstrate uniqueness in various technical applications due to their suitable physiochemical properties. In particular, yttrium oxide nanoparticle(Y2O3NPs) is familiar for technical applications because of its higher dielectric constant and thermal stability. It is widely used as a host material for a variety of rare-earth dopants, biological imaging, and photodynamic therapies. In this investigation, yttrium oxide nanoparticles (Y2O3NPs) was used as an ecofriendly corrosion inhibitor through the use of scanning electron microscopy (SEM), Fourier transforms infrared spectroscopy (FT-IR), UV-Visible spectroscopy, X-ray diffraction (XRD), and energy dispersive X-ray spectroscopy(EDX), the physico-chemical characterization of Y2O3NPs was examined. The primary characteristic peak of YOY at 565 cm-1, which indicates the synthesis of nanoparticles, is seen in the FT-IR spectra. The XRD pattern showed that a single phase cubic structure of YONPs with an Ia-3 space group had formed. SEM was used to examine the surface morphology. The composition of Yttrium and oxygen in Y2O3NPs was determined to be 78.74% and 21.26%, respectively, according to the EDX results. The anticorrosive behavior was tested by polarization curve in 18.204% CaCl2 solution at five temperatures in the range 293- 313 K. Various concentrations 0.15 0.26 and 0.37 of N Y2O3NPs coating on the carbon steel surface were applied using the electrophoresis deposition method. The obtained results indicated that Y2O3NPs formed a protective film acts as a physical barrier for the protection of steel alloy. Additionally, corrosion protection efficiency values of 0.26 N Y2O3NPs coating were superior to that of 0.15 and 0.37 N Y2O3NPs coating, respectively.

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Corrosion Inhibition Efficiency Investigation of Yttrium Oxide Nanoparticles Coated on Carbon Steel Alloy. Baghdad Sci.J [Internet]. 2023 Dec. 1 [cited 2024 Apr. 27];20(6). Available from: https://bsj.uobaghdad.edu.iq/index.php/BSJ/article/view/7637
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How to Cite

1.
Corrosion Inhibition Efficiency Investigation of Yttrium Oxide Nanoparticles Coated on Carbon Steel Alloy. Baghdad Sci.J [Internet]. 2023 Dec. 1 [cited 2024 Apr. 27];20(6). Available from: https://bsj.uobaghdad.edu.iq/index.php/BSJ/article/view/7637

References

Mohammed KA. Corrosion control mechanisms and the effect of pH on corrosion in the crude oil refining process. J Pet Sci Res. 2022; 34 (2): 270-289. https://doi.org/10.52716/jprs.v12i1(Suppl.).637

Kantor M M, Sudin V V, Solntsev KA. Materials science aspects of stress corrosion cracking of Russian pipelines. E3S Web Conf. 2019; 121, 04014. https://doi.org/10.1051/e3sconf/201912104014

Jones DA. Principles and prevention of corrosion, 2nd ed , New Jersey: Prentice Hall. 1996;474.

Al-Juboori SA, Al-shamaileh D. Improving the corrosion resistance of carbon steel cylindrical pipe by Nano- materials Coating. Part-1. Int Sci J. 2021; 3 : 110-116. https://doi.org/10.30684/etj.v39i6.2009

Rajakumar G, Mao L, Bao T, Wen W, Wang S, Gomathi NG, Rebezov M, Shariati MA, Chung I, Thiruvengadam M, Zhang X. Yttrium oxide Nanoparticle Synthesis: An Overview of Methods of preparation and Biomedical Applications. Appl Sic. 2021; 11:2172-2180. https://doi.org/10.3390/app 11052172

Rastogi AC, Sharma RN. Interfacial charge trapping in extrinsic Y2O3/SiO2 bilayer gate dielectric based MIS devices on Si(100). Semicond Sci Technol. 2019; 16:641–650.https://doi.org/10.1088/0268-1242/16/8/301

Wu CH, Chen JZ. Ultrafast atmospheric-pressure-plasma-jet processed conductive plasma-resistant Y2O3/carbon-nanotube Nanocomposite. J Alloy Compd. 2018; 651:357–362. https://doi.org/10.1016/j.jallcom.2015.08.085

Xu YN, Gu ZQ, Ching WY. Electronic, structural, and optical properties of crystalline yttrium. Phys Rev B. 1997; 56: 14993–15000. https://doi.org/10.1103/PhysRevB.56.14993

Du P, Luo L, Yue Q, Li W. The simultaneous realization of high and low temperature thermometry in Er +3 / Yb+3 codoped Y2O3 nanoparticles. Mater Lett.2018; 143(15): 209-211. https://doi.org/10.1016/j.matlet.2018.12.123

Arsiya F, Sayadi MH, Sobhani S. Green synthesis of palladium nanoparticles using Chlorella vulgaris. Mater Lett. 2016; 186: 113–115. https://doi.org/10.1016/j.matlet.2016.09.101

Khamhaengpola A, Sirib S. Green synthesis of silver nanoparticles using tissue extract of weaver ant larvae. Mater.Lett. 2017; 192: 72–75. http://dx.doi.org/10.1016/j.matlet.2017.01.076

Nagajyothi PC, Pandurangan M, Veerappan M, Kim DH, Sreekanth TM, Shim J. Green synthesis, characterization and anticancer activity of yttrium oxide nanoparticles. Mater Lett. 2017; 12: 81-90.https://doi.org/10.1016/J.MATLET.2017.12.081

Rajakumar G, Mydhili G, Salman S, Preeyanghaa , Neppolian , Thandapani , Mohammad A, Mohammad N, Banan A, Shaheer M, Devi R, Kaliaperumal R, Saleh A, Muthu Th. Sustainable green synthesis of yttrium oxide (Y2O3) nanoparticles using lantana camara leaf extracts: physicochemical characterization, photocatalytic degradation, antibacterial, and anticancer potency. Nanomaterials. 2022; 12: 2393-2407. https://doi.org/10.3390/nano12142393

Rojaee R, Fathi M, Raeissi K, Taherian M. Electrophoretic deposition of bioactive glass nanopowder on magnesium based alloy for biomedical applications. Ceram Int. 2013; 40: 7879–7888.

https://doi.org//10.1016/j.ceramint.2013.12.135

Boccaccini AR, Keim S, Li Y, Zhitomirsky I. Electrophoretic deposition of biomaterials. J R Soc Interface. 2017; 7 (5):581–613. https://doi.org/10.1098/rsif.2010.0156.focus

Chávez-Valdez A, Boccaccini AR. Innovations in electrophoretic deposition:Alternating current and pulsed direct current methods. Electrochim Acta. 2012; 65: 70–89. https://doi.org/10.1016/j.electacta.2012.01.015

Heise S. Electrophoretic deposition of gelatine nanoparticle/chitosan coatings. Electrochimica Acta. 2019; 307 :318-325. https://doi.org/10.1016/j.electacta.2019.03.145

Van der Biest OO, Vandeperre LJ. Electrophoretic Deposition of Materials. Annu Rev Mater Res. 1999; 29: 327–352. https://doi.org/10.1146/annurev.matsci.29.1.327

Heise S, Wirth T, Höhlinger M, Hernández YT, Ortiz J,Wagener V, Virtanen S, Boccaccini AR. Electrophoretic deposition of chitosan/bioactive glass/silica coatings on stainless steel and WE43 Mg alloy substrates. Surf Coat Technol. 2018; 344: 553–563. https://doi.org/10.1149/08201.0045ecst

Mahmoud ZS, Shams AK, Salman TA. Study the Inhibition Effect of Amoxicillin Drug for Corrosion of Carbon Steel in Saline Media. Baghdad Sci J. 2022; 19(1): 121-131. https://doi.org/10.21123/bsj.2022.19.1.0121

Maqubela LM. Corrosion Inhibition of Copper and Brass by Poly vinyl pyrrolidone – 2 – Acrylamide - 2-Methyl-Propansulphonate Composite in 1M Hydrochloric Acid. University of Johannesburg. master of technology. 2019. https://doi.org/10.20964/2019.01.46

Ahmed Z. Principles of Corrosion Engineering and Corrosion Control. 2016; 75: 40-52. 10.1016/B978-0-7506-5924-6.X5000-4

Salman TA, Samawi KA. and Shneine JK. Electrochemical and computational studies for mild steel Corrosion Inhibition by Benzaldehyde thiosemicarbazone in acidic medium Portugaliae Electrochimica Acta 2019; 37(4): 241-255. https://doi.org/10.4152/pea.201904241

Salman TA, Dhafer SZ, Shaimaa HJ, Moafaq AG, Ahmed M, Mohd ST, Ahmed AA. Effect of 1,3,4 thiadiazole scaffold on the corrosion inhibition of mild steel in acidic medium: an experimental and computational study. J Bio Tribo Corros. 2019; 48:1-11.https://doi.org/10.1007/s40735-019-0243-7

Ali TR., Salman TA. , Shihab MS. Pomelo leaves extract as a green corrosion inhibitor for carbon steel in 0.5 M HCl. Int J Scale Inhib. 2021; 10(4): 1729–1747. https://doi.org/10.17675/2305-6894-2021-10-4-23

SalmanTA, Qusay AJ, Mohammed AM, Ahmed AA, Lina MS, Kadhum AH, Mohd ST. New environmental friendly corrosion inhibitor of mild steel in hydrochloric acid solution: Adsorption and thermal studies. Cogent Eng. 2020; 7: 1826077. https://doi.org/10.1080/23311916.2020.1826077

Rana AH, Samawi KA, Salman TA. Inhibition Studies of Aluminium Alloy (2024) Corrosion in Acid Hydrochloride Solution Using an Expired Phenylphrine Drug Egypt J Chem. 2020; 63(8): 2863-2875. https://doi.org/10.21608/ejchem.2020.19583.2222

Hamadneh I, Alhayek H, Al-Mobydeen A, Abu Jaber A, Albuqain R, Alsotari S, Al-Dujaili A. Green Synthesis and Characterization of Yttrium Oxide, Copper Oxide and Barium Carbonate Nanoparticles Using Azadirachta Indica (the Neem Tree) Fruit Aqueous Extract. Egypt J Chem. 2019; 62 (4): 973-981. https://doi.org/10.21608/ejchem.2018.5281.1469

Rasha AJ, Muna SS, Farhan AM. Protection of Galvanized steel from corrosion in salt media using sulfur nanoparticles. Baghdad Sci J. 2022; 19(2): 347-354. https://doi.org/10.21123/bsj.2022.19.2.0347

Raheem HM., Salman TA. Tungsten Oxide Nanoparticles as Corrosion Inhibitor of Stainless Steel in Saline Medium. ANJS. 2020;.23 (1): 27 – 34. https://doi.org/10.22401/ANJS.23.1.04

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