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Yumurta Kabuğundan Üretilmiş Hidroksiapatit ile 316L Paslanmaz Çelik Yüzeyinin Sol-Jel Yöntemi Kullanılarak Kaplanması

Yıl 2024, Cilt: 5 Sayı: 2, 214 - 227, 20.12.2024
https://doi.org/10.55546/jmm.1453536

Öz

Bu çalışmada biyolojik bir atık olan yumurta kabuğundan yüksek verim ve saflıkta kalsiyum nitrat eldesi ve elde edilen kalsiyum nitratın sol-jel yöntemiyle hidroksiapatit (HAP) üretiminde kullanılabilirliği araştırılmıştır. Ayrıca elde edilen HAP daldırıp-çıkarma (dip-coating) yöntemi kullanılarak 316L çeliğinin kaplanmasında kullanılmıştır. Bu amaçla, HAP üretiminde öncül olarak kullanılacak kalsiyum nitrat, kalsiyum karbonat içeriği yüksek tavuk yumurtası kabuklarından üretildi. 316L paslanmaz çelik disklerin yüzeyi, kalsiyum nitrat ve trietil fosfit karışımından elde edilen sol-jel ile daldırıp-çıkarma (dip-coating) yöntemiyle kaplandı. Sonra, 316L diskler kurutuldu ve yüzeylerinde HAP oluşturmak için 500 °C'de ısıl işleme tabi tutuldu. Elde edilen yapıların karakterizasyonunda XRD ve SEM tekniklerinden faydalanılmıştır. Daha önce yapılan çalışmalardan farklı olarak, biyolojik bir atık olan tavuk yumurtası kabuğunun biyouyumlu bir malzeme olan HAP üretiminde kullanılabileceği ve üretilen HAP ile 316L paslanmaz çeliğin yüzeyinin kaplanabileceği gösterilmiştir.

Kaynakça

  • Ahmed, Y., Rehman, M.A.U., Improvement in the surface properties of stainless steel via zein/hydroxyapatite composite coatings for biomedical applications. Surfaces and Interfaces 20, 100589, 2020.
  • Asri R.I.M., Harun W.S.W., Hassan M.A., Ghani S.A.C., Buyong Z., A Review of hydroxyapatite-based coating techniques: sol-gel and electrochemical depositions on biocompatible metals. Journal of the Mechanical Behavior of Biomedical Materials 57, 95-108, 2016.
  • Awasthi S. Pandey S.K., Arunan E., Srivastava C., A review on hydroxyapatite coatings for the biomedical applications: experimental and theoretical perspectives. Journal of Materials Chemistry B 9, 228-249, 2021.
  • Azem F.A. ve Çakır A., 316L paslanmaz çelik altlıkların üzerine sol-jel tekniği ile amonyak takviyeli çözelti kullanarak hidroksiapatit (HAP) kaplanması. Bilim-Teknoloji 26, 136-143, 2008.
  • Azem F.A. ve Çakır A., Sol-Jel Yöntemi ile İmplant Kalite 316L Paslanmaz Çelik Üzerine Üretilen Hidroksiapatit Kaplamaların Morfolojisi Üzerine Isıl İşlem Rejiminin Etkisi. Anadolu Üniversitesi Bilim ve Teknoloji Dergisi 10(1), 291-298, 2009.
  • Ballarre J., Manjubala I., Schreiner W.H., Orellano J.C. Fratzl P., Cere S., Improving the osteointegration and bone-implant interface by incorporation of bioactive particles in sol-gel coatings of stainless steel implants. Acta Biomaterialia 6, 1601-1609, 2010.
  • Bigi A., Boanini E., Bracci B., Facchini A., Panzavolta S., Segatti F., et al, Nanocrystalline hydroxyapatite coating on titanium: a new fast biomimetic method. Biomaterials 26, 4085-4089, 2005.
  • Chen GY, Shan R, Shi JF, Yan B.B., Ultrasonic-assisted production of biodiesel from transesterification of palm oil over ostrich eggshell-derived CaO catalysts. Bioresource Technology 171, 428–32 2014.
  • Chu P.K., Chen J., Wang L., Huang N., Plasma-surface modification of biomaterials. Materials Science Engineering: R: Reports 36, 143-206, 2002.
  • Ćurković L., Žmak I., Kurajica S., Tonković M. E., Šokčević Z., Renjo, M.M., From eggshells biowaste to hydroxyapatite biomaterial: Von Eierschalen als Bioabfall bis zum Hydroxylapatit‐Biomaterial. Materialwissenschaft und Werkstofftechnik 48(8), 797-802, 2017.
  • Coşkun M., Karahan İ.H., Yücel Y., Optimized Electrode-position concentrations for hydroxyapatite coating on CoCrMo biomedical alloys by computational techniques. Electrochimica Acta 150, 46-54, 2014.
  • Gurappa, I., Development of appropriate thickness ceramic coatings on 316L stainless steel for biomedical applications. Surface and Coatings Technology 161, 70–78, 2002.
  • Habibovic P., Barrere F., Van Blitterswijk C.A., de Groot K., Layrolle P., Biomimetic hydroxyapatite coating on metal implants. Journal of the American Ceramic Society 85, 517–522, 2002.
  • Kaur S., Bala N. and Khoslac C., Characterization of hydroxyapatite coating on 316L stainless steel by sol–gel technique. Surface Engineering and Applied Electrochemistry 55(3), 357–366, 2019.
  • Kılınç, A. Ç., Ti6Al4V Metal Altlığının Yumurta Kabuğundan Türetilmiş Hidroksiapatit ile Sol-Jel Yöntemi Kullanılarak Kaplanması ve Karakterizasyonu, Dokuz Eylül Üniversitesi Fen Bilimleri Enstitüsü, Yüksek Lisans Tezi, İzmir, 2016.
  • Kim, H.-W., Kong, Y.-M., Bae, C.-J., Noh, Y.-J., Kim, H.-E., Sol–gel derived fluor-hydroxyapatite biocoatings on zirconia substrate. Biomaterials 25, 2919-2926, 2004.
  • Lani N.S., Ngadi N., Jusoh M., Mohamad Z., Zakaria Z.Y., Outstanding performance of waste chicken eggshell derived CaO as a green catalyst in biodiesel production: Optimization of calcination conditions. Journal of Physics: Conference Series 1349, 012051, 2019.
  • Liu D.-M., Yang Q., Troczynski T., Sol-gel hydroxyapatite coatings on stainless steel substrates. Biomaterials 23(3), 691–698, 2002.
  • Madhu B.J., Bhagyalakshmi H., Shruthi B., Veerabhadraswamy M., Structural, AC conductivity, dielectric and catalytic behavior of calcium oxide nanoparticles derived from waste eggshells. SN Applied Sciences 3, 637, 2021.
  • Mišković-Stanković V., Eraković S., Janković A., Vukašinović-Sekulić M., Mitrić M, Chan Jung Y., Park S.J., Rhee K.Y., Electrochemical synthesis of nanosized hydroxyapatite/graphene composite powder. Carbon Letters 16(4), 233-240, 2015.
  • Mohandesnezhad S., Etminanfar M., Mahdavi S., Safavi M.S., Enhanced bioactivity of 316L stainless steel with deposition of polypyrrole/hydroxyapatite layered hybrid coating: Orthopedic applications. Surfaces and Interfaces 28, 101604, 2022.
  • Mokhtari, A., Belhouchet, H., Guermat, A., In situ high-temperature X-ray diffraction, FT-IR and thermal analysis studies of the reaction between natural hydroxyapatite and aluminum powder. Journal of Thermal Analysis and Calorimetry 136, 1515-1526, 2019.
  • Narushima, T., Mineta, S., Kurihara, Y., Ueda, K., Precipitates in biomedical Co-Cr alloys. The Journal of the Minerals, Metals & Materials Society (TMS) 65, 489–504, 2013.
  • Nath D., Jangid K., Susaniya A., Kumar R., Vaish R., Eggshell derived CaO-Portland cement antibacterial composites. Composites Part C: Open Access 5, 100123, 2021.
  • Navarro, M., Michiardi, A., Castano, O., Planell, J.A., Biomaterials in orthopedics. J. R. Soc. Interface 5, 1137–1158, 2008.
  • Prabakaran K., Vijayalakshmi U., Rajeswari S., Fabrication, development and characterisation of calcium phosphate based bioceramic coatings on 316L stainless steel for biomedical applications. Surface Engineering 21, 225-228, 2005.
  • Rezaei, A., Golenji, R.B., Alipour, F., Hadavi, M.M., Mobasherpour, I., Hydroxyapatite/hydroxyapatite-magnesium double-layer coatings as potential candidates for surface modification of 316 LVM stainless steel implants. Ceramic International 46, 25374-25381, 2020.
  • Rojaee R, Fathi M., Raessi K., Electrophoretic deposition of nanostructured hydroxyapatite coating on AZ91 magnesium alloy implants with different surface treatments. Applied Surface Sciences 285 664-673, 2013.
  • Sanchez-Hernandez, Z.E., Dominguez-Crespo, M.A., Torres-Huerta, A.M., Onofre-Bustamante, E., Adame, J.A., Dorantes-Rosales, H., Improvement of adhesion and barrier properties of biomedical stainless steel by deposition of YSZ coatings using RF magnetron sputtering. Materials Characterization 91, 50–57, 2014.
  • Song Y.W., Shan D.Y., Han E.H., Electrodeposition of Hydroxyapatite Coating on AZ91D magnesium alloy for biomaterial application. Material Letters 62, 3276-3279, 2008.
  • Sutha, S., Kavitha, K., Karunakaran, G., Rajendran, V., In-vitro bioactivity, biocorrosion and antibacterial activity of silicon integrated hydroxyapatite/chitosan composite coating on 316L stainless steel implants. Materials Science and Engineering C 33, 4046–4054, 2013.
  • Tan Y.H., Abdullah M.O., Nolasco-Hipolito C., Taufiq-Yap Y.H., Waste ostrich- and chicken-eggshells as heterogeneous base catalyst for biodiesel production from used cooking oil: Catalyst characterization and biodiesel yield performance. Applied Energy 160 58–70, 2015.
  • Tangboriboon, N., Kunanuruksapong, R., Sirivat, A., Kunanuruksapong, R., Sirivat A., Preparation and properties of calcium oxide from eggshells via calcination. Materials Science. Poland 30 313–322, 2012.
  • Toygun Ş., Köneçoğlu G., Kalpaklı Y. General principles of sol-gel. Sigma Journal of Engineering and Natural Sciences 31, 456-476. 2013.
  • Wei M., Ruys A.J., Swain M.V., Milthorpe B.K., Sorrell C.C., Hydroxyapatite-coated metals: Interfacial reaction during sintering. Journal of Materials Science: Materials in Medicine 16, 101-106, 2005.
  • Yazdani, J., Ahmadian, E., Sharifi, S., Shahi, S., Dizaj, S.M., A short view on nanohydroxyapatite as coating of dental implants. Biomedicine & Pharmacotherapy 105, 553-557, 2018.
  • Yazıcı, M., Çomaklı, O., Yetim, T., Yetim, A.F., Çelik, A., The effect of plasma nitriding temperature on the electrochemical and semiconducting properties of thin passive films formed on 316L stainless steel implant material in SBF solution. Surface and Coatings Technology 261, 181–188, 2015.
  • Zhang J.X., Guan R.F., Zhang X.P., Synthesis and characterization of sol-gel hydroxyapatite coating deposited on porous NiTi Alloys. Journal of Alloys and Compounds 509, 4643-4648, 2011.
  • Zhong Z., Qin J., Ma J., Cellulose acetate/hydroxyapatite/chitosan coatings for improved corrosion resistance and bioactivity. Materials Science and Engineering: C 49, 251-255, 2015.
  • Zhou Z., Zheng B., Gu Y., Shen C., Wen J., Meng Z., Chen S., Ou J., Qin A., New approach for improving anticorrosion and biocompatibility of magnesium alloys via polydopamine intermediate layer-induced hydroxyapatite coating. Surfaces and Interfaces 19, 100501, 2020.

Coating of the Surface of 316L Stainless Steel with Hydroxyapatite Produced from Eggshell Using the Sol-Gel Method

Yıl 2024, Cilt: 5 Sayı: 2, 214 - 227, 20.12.2024
https://doi.org/10.55546/jmm.1453536

Öz

In this study, the production of high-yield and purity calcium nitrate from eggshell, a biological waste, and the usability of the obtained calcium nitrate in the production of hydroxyapatite (HAP) by the sol-gel method were investigated. In addition, the obtained HAP was used to coat 316L steel using the dip coating method. For this purpose, calcium nitrate, which will be used as a precursor in HAP production, was produced from chicken eggshells with high calcium carbonate content. The surface of 316L stainless steel discs was coated with sol-gel obtained from a mixture of calcium nitrate and triethyl phosphite by dip-coating method. Then, the 316L discs were dried and heat treated at 500 °C to form HAP on their surfaces. XRD and SEM techniques were used for the characterization of the obtained HAP structure. Unlike previous studies, it has been shown that chicken eggshell, a biological waste, can be used to produce HAP, a biocompatible material, and the surface of 316L stainless steel can be coated with the produced HAP.

Kaynakça

  • Ahmed, Y., Rehman, M.A.U., Improvement in the surface properties of stainless steel via zein/hydroxyapatite composite coatings for biomedical applications. Surfaces and Interfaces 20, 100589, 2020.
  • Asri R.I.M., Harun W.S.W., Hassan M.A., Ghani S.A.C., Buyong Z., A Review of hydroxyapatite-based coating techniques: sol-gel and electrochemical depositions on biocompatible metals. Journal of the Mechanical Behavior of Biomedical Materials 57, 95-108, 2016.
  • Awasthi S. Pandey S.K., Arunan E., Srivastava C., A review on hydroxyapatite coatings for the biomedical applications: experimental and theoretical perspectives. Journal of Materials Chemistry B 9, 228-249, 2021.
  • Azem F.A. ve Çakır A., 316L paslanmaz çelik altlıkların üzerine sol-jel tekniği ile amonyak takviyeli çözelti kullanarak hidroksiapatit (HAP) kaplanması. Bilim-Teknoloji 26, 136-143, 2008.
  • Azem F.A. ve Çakır A., Sol-Jel Yöntemi ile İmplant Kalite 316L Paslanmaz Çelik Üzerine Üretilen Hidroksiapatit Kaplamaların Morfolojisi Üzerine Isıl İşlem Rejiminin Etkisi. Anadolu Üniversitesi Bilim ve Teknoloji Dergisi 10(1), 291-298, 2009.
  • Ballarre J., Manjubala I., Schreiner W.H., Orellano J.C. Fratzl P., Cere S., Improving the osteointegration and bone-implant interface by incorporation of bioactive particles in sol-gel coatings of stainless steel implants. Acta Biomaterialia 6, 1601-1609, 2010.
  • Bigi A., Boanini E., Bracci B., Facchini A., Panzavolta S., Segatti F., et al, Nanocrystalline hydroxyapatite coating on titanium: a new fast biomimetic method. Biomaterials 26, 4085-4089, 2005.
  • Chen GY, Shan R, Shi JF, Yan B.B., Ultrasonic-assisted production of biodiesel from transesterification of palm oil over ostrich eggshell-derived CaO catalysts. Bioresource Technology 171, 428–32 2014.
  • Chu P.K., Chen J., Wang L., Huang N., Plasma-surface modification of biomaterials. Materials Science Engineering: R: Reports 36, 143-206, 2002.
  • Ćurković L., Žmak I., Kurajica S., Tonković M. E., Šokčević Z., Renjo, M.M., From eggshells biowaste to hydroxyapatite biomaterial: Von Eierschalen als Bioabfall bis zum Hydroxylapatit‐Biomaterial. Materialwissenschaft und Werkstofftechnik 48(8), 797-802, 2017.
  • Coşkun M., Karahan İ.H., Yücel Y., Optimized Electrode-position concentrations for hydroxyapatite coating on CoCrMo biomedical alloys by computational techniques. Electrochimica Acta 150, 46-54, 2014.
  • Gurappa, I., Development of appropriate thickness ceramic coatings on 316L stainless steel for biomedical applications. Surface and Coatings Technology 161, 70–78, 2002.
  • Habibovic P., Barrere F., Van Blitterswijk C.A., de Groot K., Layrolle P., Biomimetic hydroxyapatite coating on metal implants. Journal of the American Ceramic Society 85, 517–522, 2002.
  • Kaur S., Bala N. and Khoslac C., Characterization of hydroxyapatite coating on 316L stainless steel by sol–gel technique. Surface Engineering and Applied Electrochemistry 55(3), 357–366, 2019.
  • Kılınç, A. Ç., Ti6Al4V Metal Altlığının Yumurta Kabuğundan Türetilmiş Hidroksiapatit ile Sol-Jel Yöntemi Kullanılarak Kaplanması ve Karakterizasyonu, Dokuz Eylül Üniversitesi Fen Bilimleri Enstitüsü, Yüksek Lisans Tezi, İzmir, 2016.
  • Kim, H.-W., Kong, Y.-M., Bae, C.-J., Noh, Y.-J., Kim, H.-E., Sol–gel derived fluor-hydroxyapatite biocoatings on zirconia substrate. Biomaterials 25, 2919-2926, 2004.
  • Lani N.S., Ngadi N., Jusoh M., Mohamad Z., Zakaria Z.Y., Outstanding performance of waste chicken eggshell derived CaO as a green catalyst in biodiesel production: Optimization of calcination conditions. Journal of Physics: Conference Series 1349, 012051, 2019.
  • Liu D.-M., Yang Q., Troczynski T., Sol-gel hydroxyapatite coatings on stainless steel substrates. Biomaterials 23(3), 691–698, 2002.
  • Madhu B.J., Bhagyalakshmi H., Shruthi B., Veerabhadraswamy M., Structural, AC conductivity, dielectric and catalytic behavior of calcium oxide nanoparticles derived from waste eggshells. SN Applied Sciences 3, 637, 2021.
  • Mišković-Stanković V., Eraković S., Janković A., Vukašinović-Sekulić M., Mitrić M, Chan Jung Y., Park S.J., Rhee K.Y., Electrochemical synthesis of nanosized hydroxyapatite/graphene composite powder. Carbon Letters 16(4), 233-240, 2015.
  • Mohandesnezhad S., Etminanfar M., Mahdavi S., Safavi M.S., Enhanced bioactivity of 316L stainless steel with deposition of polypyrrole/hydroxyapatite layered hybrid coating: Orthopedic applications. Surfaces and Interfaces 28, 101604, 2022.
  • Mokhtari, A., Belhouchet, H., Guermat, A., In situ high-temperature X-ray diffraction, FT-IR and thermal analysis studies of the reaction between natural hydroxyapatite and aluminum powder. Journal of Thermal Analysis and Calorimetry 136, 1515-1526, 2019.
  • Narushima, T., Mineta, S., Kurihara, Y., Ueda, K., Precipitates in biomedical Co-Cr alloys. The Journal of the Minerals, Metals & Materials Society (TMS) 65, 489–504, 2013.
  • Nath D., Jangid K., Susaniya A., Kumar R., Vaish R., Eggshell derived CaO-Portland cement antibacterial composites. Composites Part C: Open Access 5, 100123, 2021.
  • Navarro, M., Michiardi, A., Castano, O., Planell, J.A., Biomaterials in orthopedics. J. R. Soc. Interface 5, 1137–1158, 2008.
  • Prabakaran K., Vijayalakshmi U., Rajeswari S., Fabrication, development and characterisation of calcium phosphate based bioceramic coatings on 316L stainless steel for biomedical applications. Surface Engineering 21, 225-228, 2005.
  • Rezaei, A., Golenji, R.B., Alipour, F., Hadavi, M.M., Mobasherpour, I., Hydroxyapatite/hydroxyapatite-magnesium double-layer coatings as potential candidates for surface modification of 316 LVM stainless steel implants. Ceramic International 46, 25374-25381, 2020.
  • Rojaee R, Fathi M., Raessi K., Electrophoretic deposition of nanostructured hydroxyapatite coating on AZ91 magnesium alloy implants with different surface treatments. Applied Surface Sciences 285 664-673, 2013.
  • Sanchez-Hernandez, Z.E., Dominguez-Crespo, M.A., Torres-Huerta, A.M., Onofre-Bustamante, E., Adame, J.A., Dorantes-Rosales, H., Improvement of adhesion and barrier properties of biomedical stainless steel by deposition of YSZ coatings using RF magnetron sputtering. Materials Characterization 91, 50–57, 2014.
  • Song Y.W., Shan D.Y., Han E.H., Electrodeposition of Hydroxyapatite Coating on AZ91D magnesium alloy for biomaterial application. Material Letters 62, 3276-3279, 2008.
  • Sutha, S., Kavitha, K., Karunakaran, G., Rajendran, V., In-vitro bioactivity, biocorrosion and antibacterial activity of silicon integrated hydroxyapatite/chitosan composite coating on 316L stainless steel implants. Materials Science and Engineering C 33, 4046–4054, 2013.
  • Tan Y.H., Abdullah M.O., Nolasco-Hipolito C., Taufiq-Yap Y.H., Waste ostrich- and chicken-eggshells as heterogeneous base catalyst for biodiesel production from used cooking oil: Catalyst characterization and biodiesel yield performance. Applied Energy 160 58–70, 2015.
  • Tangboriboon, N., Kunanuruksapong, R., Sirivat, A., Kunanuruksapong, R., Sirivat A., Preparation and properties of calcium oxide from eggshells via calcination. Materials Science. Poland 30 313–322, 2012.
  • Toygun Ş., Köneçoğlu G., Kalpaklı Y. General principles of sol-gel. Sigma Journal of Engineering and Natural Sciences 31, 456-476. 2013.
  • Wei M., Ruys A.J., Swain M.V., Milthorpe B.K., Sorrell C.C., Hydroxyapatite-coated metals: Interfacial reaction during sintering. Journal of Materials Science: Materials in Medicine 16, 101-106, 2005.
  • Yazdani, J., Ahmadian, E., Sharifi, S., Shahi, S., Dizaj, S.M., A short view on nanohydroxyapatite as coating of dental implants. Biomedicine & Pharmacotherapy 105, 553-557, 2018.
  • Yazıcı, M., Çomaklı, O., Yetim, T., Yetim, A.F., Çelik, A., The effect of plasma nitriding temperature on the electrochemical and semiconducting properties of thin passive films formed on 316L stainless steel implant material in SBF solution. Surface and Coatings Technology 261, 181–188, 2015.
  • Zhang J.X., Guan R.F., Zhang X.P., Synthesis and characterization of sol-gel hydroxyapatite coating deposited on porous NiTi Alloys. Journal of Alloys and Compounds 509, 4643-4648, 2011.
  • Zhong Z., Qin J., Ma J., Cellulose acetate/hydroxyapatite/chitosan coatings for improved corrosion resistance and bioactivity. Materials Science and Engineering: C 49, 251-255, 2015.
  • Zhou Z., Zheng B., Gu Y., Shen C., Wen J., Meng Z., Chen S., Ou J., Qin A., New approach for improving anticorrosion and biocompatibility of magnesium alloys via polydopamine intermediate layer-induced hydroxyapatite coating. Surfaces and Interfaces 19, 100501, 2020.
Toplam 40 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Biyomedikal Mühendisliğinde Biyomateryaller
Bölüm Araştırma Makaleleri
Yazarlar

Levent Özcan 0000-0003-4504-4237

Adile Şahin 0009-0006-4446-1214

Betül Karabulut 0009-0006-1858-7294

Nagehan Sürük 0009-0005-0646-3668

Yayımlanma Tarihi 20 Aralık 2024
Gönderilme Tarihi 15 Mart 2024
Kabul Tarihi 1 Temmuz 2024
Yayımlandığı Sayı Yıl 2024 Cilt: 5 Sayı: 2

Kaynak Göster

APA Özcan, L., Şahin, A., Karabulut, B., Sürük, N. (2024). Coating of the Surface of 316L Stainless Steel with Hydroxyapatite Produced from Eggshell Using the Sol-Gel Method. Journal of Materials and Mechatronics: A, 5(2), 214-227. https://doi.org/10.55546/jmm.1453536
AMA Özcan L, Şahin A, Karabulut B, Sürük N. Coating of the Surface of 316L Stainless Steel with Hydroxyapatite Produced from Eggshell Using the Sol-Gel Method. J. Mater. Mechat. A. Aralık 2024;5(2):214-227. doi:10.55546/jmm.1453536
Chicago Özcan, Levent, Adile Şahin, Betül Karabulut, ve Nagehan Sürük. “Coating of the Surface of 316L Stainless Steel With Hydroxyapatite Produced from Eggshell Using the Sol-Gel Method”. Journal of Materials and Mechatronics: A 5, sy. 2 (Aralık 2024): 214-27. https://doi.org/10.55546/jmm.1453536.
EndNote Özcan L, Şahin A, Karabulut B, Sürük N (01 Aralık 2024) Coating of the Surface of 316L Stainless Steel with Hydroxyapatite Produced from Eggshell Using the Sol-Gel Method. Journal of Materials and Mechatronics: A 5 2 214–227.
IEEE L. Özcan, A. Şahin, B. Karabulut, ve N. Sürük, “Coating of the Surface of 316L Stainless Steel with Hydroxyapatite Produced from Eggshell Using the Sol-Gel Method”, J. Mater. Mechat. A, c. 5, sy. 2, ss. 214–227, 2024, doi: 10.55546/jmm.1453536.
ISNAD Özcan, Levent vd. “Coating of the Surface of 316L Stainless Steel With Hydroxyapatite Produced from Eggshell Using the Sol-Gel Method”. Journal of Materials and Mechatronics: A 5/2 (Aralık 2024), 214-227. https://doi.org/10.55546/jmm.1453536.
JAMA Özcan L, Şahin A, Karabulut B, Sürük N. Coating of the Surface of 316L Stainless Steel with Hydroxyapatite Produced from Eggshell Using the Sol-Gel Method. J. Mater. Mechat. A. 2024;5:214–227.
MLA Özcan, Levent vd. “Coating of the Surface of 316L Stainless Steel With Hydroxyapatite Produced from Eggshell Using the Sol-Gel Method”. Journal of Materials and Mechatronics: A, c. 5, sy. 2, 2024, ss. 214-27, doi:10.55546/jmm.1453536.
Vancouver Özcan L, Şahin A, Karabulut B, Sürük N. Coating of the Surface of 316L Stainless Steel with Hydroxyapatite Produced from Eggshell Using the Sol-Gel Method. J. Mater. Mechat. A. 2024;5(2):214-27.