The Optimal Parameter for Coating ZnO Nanoparticle on Orthodontic Molar Tube by Electrophoretic Deposition Method (An Invitro Study)

محتوى المقالة الرئيسي

Ahmed K. Al-Murshady
Dheaa H. Al-Groosh
Kamil J. Kadhim

الملخص

The fixed orthodontic appliance may enhance devious pathogens and increase biofilm accumulation around the orthodontic molar tube (OMT) surface, which may cause demineralization of the tooth surface. However, the stainless-steel OMT coated with ZnO nanoparticles may enhance antimicrobial efficacy and reduce biofilm accretion. The study aimed to identify the optimal parameter for coating orthodontic molar tubes with antimicrobial ZnO nanoparticles by the electrophoretic deposition (EPD)cell. 36 orthodontic molar tubes were included in this study. The coating process was carried out using an EPD cell. Various concentrations (7.5, 10, 20, 33) g/L of ZnO nanoparticles suspension were conducted in this study, in addition to multiple times and voltages. After the coating process, the samples were left to dry for 24 hours at room temperature. To confirm the coating and adhesion a qualitative tape test and the Scanning Electron microscope were used to study the morphological, topographical, and surface characteristics and the size of nanoparticles on the surface of the coated OMT. The innovative ZnO nanoparticles exhibit promising antibacterial properties against oral pathogens, leading to a decrease in plaque buildup, which may decrease tooth cavities and gingival irritation through orthodontic treatment. There was an increase in nanoparticle surface adhesion on the orthodontic molar tube surface at 2 mins deposition time while reduced surface adhesion as increased deposing time. The coating process was verified at a currency voltage of 30V, reducing nanoparticle agglomeration. A concentration of 10g/L of ZnO suspension shows the most stable and homogenous suspension.

تفاصيل المقالة

كيفية الاقتباس
"The Optimal Parameter for Coating ZnO Nanoparticle on Orthodontic Molar Tube by Electrophoretic Deposition Method (An Invitro Study)" (2024) مجلة الهندسة, 30(9), ص 122–137. doi:10.31026/j.eng.2024.09.07.
القسم
Articles

كيفية الاقتباس

"The Optimal Parameter for Coating ZnO Nanoparticle on Orthodontic Molar Tube by Electrophoretic Deposition Method (An Invitro Study)" (2024) مجلة الهندسة, 30(9), ص 122–137. doi:10.31026/j.eng.2024.09.07.

تواريخ المنشور

الإستلام

2023-11-28

النسخة النهائية

2024-04-25

الموافقة

2024-05-05

النشر الالكتروني

2024-09-01

المراجع

Abdulhussein, D.A., AL-Groosh, D.H., 2022. An antimicrobial nanoparticles coated fixed orthodontic retainer (an in vitro study). PhD Thesis. University of Baghdad, Baghdad, Iraq.

Abudalazez, A.M., Kasim, S.R., Ariffin, A.B., and Ahmad, Z.A., 2012. Effect of the solid concentration in the suspension on electrophoretic deposition (EPD) coating parameters. International Journal of Engineering Research in Africa, 8, pp. 47-54. https://doi.org/10.4028/www.scientific.net/JERA.8.47

AL-Ali, N.A., Abdulkareem, M.H., and Anoon, I.A., 2021. Optimizing and comparative of polymer-45s5bg and polymer-ha coating by electrophoretic deposition (EPD). Diyala Journal of Engineering Sciences, 14, pp. 13-25. https://doi.org/10.24237/djes.2021.14402

Ali N. Alobiedy, Ali H. Alhille, and Ahmed R. Al-Hamaoy, 2019. Mechanical properties enhancement of conventional glass ionomer cement by adding Zirconium Oxide micro and nanoparticles. Journal of Engineering, 25, 72-81. https://doi.org/10.31026/j.eng.2019.02.05

Aldabagh, D.J., Alzubadi, T.L., and Alhuwaizi, A.F., 2023. Tribology of coated 316L SS by various nanoparticles. International Journal of Biomaterials, 2023, P. 6676473. https://doi.org/10.1155/2023/6676473

Alhazmi, A.S., Syame, S.M., Mohamed, W.S., and Hakim, A.S., 2022. Incorporation of plant extracted hydroxyapatite and chitosan nanoparticles on the surface of orthodontic micro-implants: An in-vitro antibacterial study. Microorganisms, 10, P. 581. https://doi.org/10.3390/microorganisms10030581

Allaker, R.P., 2010. The use of nanoparticles to control oral biofilm formation. Journal of dental research, 89, pp. 1175-1186. https://doi.org/10.1177/0022034510377794

Anhoury, P., Nathanson, D., Hughes, C.V., Socransky, S., Feres, M., and Chou, L.L., 2002. Microbial profile on metallic and ceramic bracket materials. The Angle Orthodontist, 72, pp. 338-343. https://doi.org/10.1043/0003-3219(2002)072%3C0338:MPOMAC%3E2.0.CO;2

Anita, P., Sathyanarayana, H.P., Kumar, K., Ramanathan, K., and Kailasam, V., 2022. Antimicrobial efficacy of zinc oxide nanoparticle-coated aligners on Streptococcus mutans and Candida albicans. American Journal of Orthodontics and Dentofacial Orthopedics. 163(3), pp.338-346. https://doi.org/10.1016/j.ajodo.2021.11.020

Behroozian, A., Kachoei, M., Khatamian, M., and Divband, B., 2016. The effect of ZnO nanoparticle coating on the frictional resistance between orthodontic wires and ceramic brackets. Journal of dental research, dental clinics, dental prospects, 10, P. 106. https://doi.org/10.15171%2Fjoddd.2016.017

Bhushan, J., and Maini, C., 2019. Nanoparticles: a promising novel adjunct for dentistry. Indian Journal of Dental Sciences, 11, P. 167. https://doi.org/10.4103/IJDS.IJDS_26_19

Cannio, M., Boccaccini, D.N., Ponzoni, C., and Leonelli, C., 2021. Electrophoretic deposition: An effective technique to obtain functionalized nanocoatings. Handbook of Modern Coating Technologies. Elsevier. https://doi.org/10.1016/B978-0-444-63240-1.00008-5

Cordero-Arias, L., Cabanas-Polo, S., Gao, H., Gilabert, J., Sanchez, E., Roether, J., Schubert, D., Virtanen, S., and

Boccaccini, A.R., 2013. Electrophoretic deposition of nanostructured-TiO 2/chitosan composite coatings on stainless steel. RSC advances, 3, pp. 11247-11254. https://doi.org/10.1039/C3RA40535D

Guibal, E., Vincent, T., and Navarro, R., 2014. Metal ion biosorption on chitosan for the synthesis of advanced materials. Journal of Materials Science, 49, pp. 5505-5518. https://doi.org/10.1007/s10853-014-8301-5

Hailan, S.Y., and Al-Khatieeb, M.M., 2019. Antimicrobial efficacy of silver, zinc oxide, and titanium dioxide nanoparticles incorporated in orthodontic bonding agent. Journal of Baghdad College of Dentistry, 31, pp. 10-16. https://doi.org/10.26477/jbcd.v31i3.2693

Hasan, S.M., and Alhuwaizi, A.F., 2022. Antibiofilm and antimicrobial effectiveness of chlorhexidine hexametaphosphate nanoparticles as a coating for orthodontic miniscrews. Pakistan Journal of Medical & Health Sciences, 16, pp. 626-626. https://doi.org/10.53350/pjmhs22163626

Heise, S., Forster, C., Heer, S., Qi, H., Zhou, J., Virtanen, S., Lu, T., and Boccaccini, A. R., 2019. Electrophoretic deposition of gelatine nanoparticle/chitosan coatings. Electrochimica Acta, 307, pp. 318-325. https://doi.org/10.1016/j.electacta.2019.03.145

Jabbar, M. F. A., 2020. Preparation of Nano Zinc Oxide and its application in the photocatalytic degradation of Ampicillin. Journal of Engineering, 26, 133-149. https://doi.org/10.31026/j.eng.2020.11.09

Jaffar, S., Kadhim, M., and Anoon, I., 2018. Increase bioactivity and antibacterial of 316 l stainless steel by electrophoretic deposition coating. The Egyptian Journal of Experimental Biology (Botany), 14(1). https://doi.org/10.5455/egyjebb.20171026063428

Jani, G.H., and Fatalla, A.A., 2022. Surface characterization of pekk modified by strontium–hydroxyapatite coating as implant material via the magnetron sputtering deposition technique. Journal of Baghdad College of Dentistry, 34, pp. 25-36. https://doi.org/10.26477/jbcd.v34i2.3143

Jia, K., Meng, X., and Wang, W., 2021. Study on the preparation of high-temperature resistant and electrically insulating h-BN coating in ethanol solution by electrophoretic deposition. Processes, 9, P. 871. https://doi.org/10.3390/pr9050871

Kadhem, D. J., and Al Haidar, A. H. M. J., 2023. Antibacterial and cytotoxic effect of a novel biological Nano-silver fluoride synthesized from moringa oleifera leaf extract. Journal of Baghdad College of Dentistry, 35, pp. 32-44. https://doi.org/10.26477/jbcd.v35i2.3397

Kaya, S., and Boccaccini, A. R., 2017. Electrophoretic deposition of zein coatings. Journal of Coatings Technology and Research, 14, pp. 683-689. https://doi.org/10.1007/s11998-016-9885-2

Kučera, J., Littlewood, S.J., and Marek, I., 2021. Fixed retention: pitfalls and complications. British Dental Journal, 230, pp. 703-708. https://doi.org/10.1038/s41415-021-2892-4

Lau, K., 2012. Controlled surface layer deposition for steel surface hardening. UNSW Sydney. https://doi.org/10.26190/unsworks/15484

Maciąg, F., Moskalewicz, T., Kowalski, K., Łukaszczyk, A., Hadzhieva, Z., and Boccaccini, A. R., 2021. The effect of electrophoretic deposition parameters on the microstructure and adhesion of zein coatings to titanium substrates. Materials, 14, P. 312. https://doi.org/10.3390/ma14020312

Makarim Abdulkareem, M.K., Nawal Abdulateef., 2017. Optimizing of electrophoretic deposition parameters and characterization of nanobiocomposites functionally graded Hydroxyapatite-Yttria partially stabilized Zirconia. PhD, University of Technology.

Mirzaei, H., and Darroudi, M., 2017. Zinc oxide nanoparticles: Biological synthesis and biomedical applications. Ceramics International, 43, pp. 907-914. https://doi.org/10.1016/j.ceramint.2016.10.051

Mohammed, A.A., and Hamad, T.I., 2021. Assessment of coating Zirconium implant material with nanoparticles of Faujasite. Journal of Baghdad College of Dentistry, 33, pp. 25-30. https://doi.org/10.26477/jbcd.v33i4.3016

Mohammed, H.H., Abdlkareem, M.H., and Mustafa, A.M., 2022. Optimizations electrophoretic deposition of PEEK/HA on 316L for biomedical application.

Monteiro, D.R., Gorup, L.F., Takamiya, A.S., Ruvollo-Filho, A.C., de Camargo, E.R., and Barbosa, D.B., 2009. The growing importance of materials that prevent microbial adhesion: antimicrobial effect of medical devices containing silver. International journal of antimicrobial agents, 34, pp. 103-110. https://doi.org/10.1016/j.ijantimicag.2009.01.017

Moradpoor, H., Safaei, M., Mozaffari, H.R., Sharifi, R., Imani, M.M., Golshah, A., and Bashardoust, N., 2021. An overview of recent progress in dental applications of zinc oxide nanoparticles. RSC advances, 11, pp. 21189-21206. https://doi.org/10.1039/D0RA10789A

Morin-Crini, N., Lichtfouse, E., Torri, G., and Crini, G., 2019. Applications of chitosan in food, pharmaceuticals, medicine, cosmetics, agriculture, textiles, pulp and paper, biotechnology, and environmental chemistry. Environmental Chemistry Letters, 17, pp. 1667-1692. https://doi.org/10.1007/s10311-019-00904-x

Rashid, A.A., 2022. Effect of optiglaze coating on the staphylococcus aurous and porosity of heat cured acrylic material. Journal of Baghdad College of Dentistry, 34, pp. 7-16. https://doi.org/10.26477/jbcd.v34i2.3141

Saxena, A., 2011. Study of hydroxyapatite and hydroxyapatite-chitosan composite coatings on Stainless Steel by electrophoretic deposition method. Ph.D, National Institute of Technology Rourkela.

Salman, E. A., 2018. Experimental investigation of the electro co-deposition of (Zinc-Nickel) Alloy. Journal of Engineering, 24(2), pp. 46-61. https://doi.org/10.31026/j.eng.2018.02.04

Slavin, Y.N., Asnis, J., Häfeli, U.O., and Bach, H., 2017. Metal nanoparticles: understanding the mechanisms behind antibacterial activity. Journal of Nanobiotechnology, 15, pp. 1-20. https://doi.org/10.1186/s12951-017-0308-z

Talib, M.A., Ali, B.G., Al-Rubaee, E.A., and Mahdy, M., 2023. The effect of Titanium dioxide nanoparticles on the activity of salivary peroxidase in periodontitis patients. Journal of Baghdad College of Dentistry, 35, pp. 10-19. https://doi.org/10.26477/jbcd.v35i2.3393

Tanbakuchi, B., Pourhajibagher, M., Badiei, A., Masaeli, R., and Bahrami, R., 2022. Evaluation of the cell viability and antimicrobial effects of orthodontic bands coated with silver and zinc oxide nanoparticles: an in vitro study. The Korean Journal of Orthodontics. https://doi.org/10.4041/kjod22.091

Tavassoli-Hojjati, S., Haghgoo, R., Mehran, M., and Niktash, A., 2012. Evaluation of the effect of fluoride gel and varnish on the demineralization resistance of enamel: an in vitro. Journal of Iranian Dental Association, 24, pp. 28-34. http://jida.ir/article-1-1199-en.html

Xiao, X. F. and Liu, R. F., 2006. Effect of suspension stability on electrophoretic deposition of hydroxyapatite coatings. Materials Letters, 60, pp. 2627-2632. https://doi.org/10.1016/J.MATLET.2006.01.048

Xu, Y., Wei, M.T., Ou-Yang, H.D., Walker, S.G., Wang, H.Z., Gordon, C.R., Guterman, S., Zawacki, E., Applebaum, E., and Brink, P.R., 2016. Exposure to TiO2 nanoparticles increases staphylococcus aureus infection of HeLa cells. Journal of Nanobiotechnology, 14, pp. 1-16. https://doi.org/10.1186/s12951-016-0184-y

Yen, H.J., Hsu, S.H., and Tsai, C.L., 2009. Cytotoxicity and immunological response of gold and silver nanoparticles of different sizes. Small, 5, pp. 1553-1561. https://doi.org/10.1002/smll.200900126

المؤلفات المشابهة

يمكنك أيضاً إبدأ بحثاً متقدماً عن المشابهات لهذا المؤلَّف.