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Materials Technology
Advanced Performance Materials
Volume 33, 2018 - Issue 9
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Original Articles

Developing composites of ZE41 Mg alloy - naturally derived hydroxyapatite by friction stir processing: investigating in vitro degradation behavior

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Pages 603-611 | Received 25 Mar 2018, Accepted 28 May 2018, Published online: 14 Jun 2018

References

  • Witte F, Hort N, Vogt C, et al. Degradable biomaterials based on magnesium corrosion. Curr Opin Solid St Mater Sci. 2008;12:63–72.
  • Shaw BA, Sikora E, Virtanen S. Fix, heal, and disappear: a new approach to using metals in the human body. Electrochemi Soc Interface. 2008;45–49.
  • Zeng R, Dietzel W, Witte F, et al. Progress and challenge for magnesium alloys as biomaterials. Adv Eng Mater. 2008;10(8):B3–B14.
  • Kirkland NT, Birbilis N. Magnesium biomaterials design, testing, and best practice. New York, USA: Springer Science and Business Media; 2014. p. 1–131.
  • Shaylin S, George JD. Calcium phosphate coatings on magnesium alloys for biomedical applications: A review. Acta Biomater. 2012;8:20–30.
  • Wang H, Estrin Y, Zúberová Z. Bio-corrosion of a magnesium alloy with different processing histories. Mater Lett. 2008;62:2476–2479.
  • Trivedi P, Nune KC, Misra RDK. Grain structure dependent self-assembled bioactive coating on Mg-2Zn-2Gd alloy: mechanism of degradation at biointerfaces. Surf Coat Technol. 2017;315:250–257.
  • Trivedi P, Nune KC, Misra RDK. Degradation behavior of magnesium-rare earth biomedical alloys. Mater Tech: Advanced Perform Mater. 2016;31:726–731.
  • Mahapatro A, Matos Negros TD, Gomes AS. Nanostructured self-assembled monolayers on magnesium for improved biological performance. Mater Tech: Advanced Perform Mater. 2016;31(13):818–827.
  • Li K, Injeti VSY, Trivedi P, et al. Nanoscale deformation of multiaxial forged ultrafine-grained Mg-2Zn-2Gd alloy with high strength-high ductility combination and comparison with the coarse-grained counterpart. J Mater Sci Technol. 2018; 34(2): 311–316.
  • Trivedi P, Nune KC, Misra RDK, et al. Grain refinement to sub-micron regime in multiaxial forged Mg-2Zn-2Gd alloy and relationship to mechanical properties. Mater Sci Eng. 2016;668:59–65.
  • Guan RG, Shen YF, Zhao ZY, et al. Nanoscale precipitates strengthened lanthanum-bearing Mg-3Sn-1Mn alloys through continuous rheo-rolling. Scientific Reports-Nature. 2016;6(23154):1–15.
  • Ratna Sunil B, Thirugnanam A, Chakkingal U, et al. Nano and ultra fine grained metallic biomaterials by severe plastic deformation techniques. Mater Tech: Advanced Perform Mater. 2016;31(13):743–755.
  • Trivedi P, Nune KC, Misra RDK, et al. Cellular response of Escherichia coli to Mg-2Zn-2Gd alloy with different grain structure: mechanism of disruption of colonisation. Mater Tech: Advanced Perform Mater. 2016;31(13):836–844.
  • Trivedi P, Misra RDK. Surface biodegradation behavior of rare earth- containing magnesium alloys with different microstructure: the impact on apatite coating formation on the surface. Mater Technol. 2018;33:488–494.
  • Santos MH, De Oliveira M, De Freitas Souza P, et al. Synthesis control and characterization of hydroxyapatite prepared by wet precipitation process. Mater Res. 2004;7(4):625–630.
  • Rameshbabu N, Prasad Rao K, Sampath Kumar TS. Accelerated microwave processing of nanocrystalline hydroxyapatite. J Mater Sci. 2005;40:6319–6323.
  • Kojima Y, Kitazawa K, Nishimiya N. Synthesis of nano-sized hydroxyapatite by ultrasound irradiation. J Physics: Conf Ser. 2012;339:012001.
  • Masuda Y, Matubara K, Sakka SS. Synthesis of hydroxyapatite from metal alkoxides through sol gel technique. J Ceram Soc Jpn. 1990;98:1266–1277.
  • Shikhanzadeh M. Direct formation of nanophase hydroxyapatite on cathodically polarized electrodes. J Mater Sci: Mater Med. 1998;9:67–72.
  • Suchanek WL, Riman RE. Hydrothermal synthesis of advanced ceramic powders. Adv Sci Technol. 2006;45:184–193.
  • Cho JS, Kang YC. Nano-sized hydroxyapatite powders prepared by flame spray pyrolysis. J Alloys Compd. 2008;464(1–2):282–287.
  • Sivakumar M, Sampath Kumar TS, Shantha KL, et al. Development of hydroxyapatite derived from Indian coral. Biomaterials. 1996;17(17):1709–1714.
  • Krishna DSR, Siddharthan A, Seshadri SK, et al. A novel route for synthesis of nanocrystalline hydroxyapatite from eggshell waste. J Mater Sci: Mater Med. 2007;8(9):1735–1743.
  • Ozawa M, Suzuki S. Microstructural development of natural hydroxyapatite originated from fish-bone waste through heat treatment. J Am Ceram Soc. 2002;85(5):1315–1317.
  • Boutinguiza M, Pou J, Comesaña R, et al. Biological hydroxyapatite obtained from fish bones. Mater Sci Eng C. 2012;32:478–486.
  • Huang Y-C, Hsiao P-C, Chai H-J. Hydroxyapatite extracted from fish scale: effects on MG63 osteoblast-like cells. Ceram Int. 2011;37(6):1825–1831.
  • Ratna Sunil B, Jagannatham M. Producing hydroxyapatite from fish bones by heat treatment. Mater Lett. 2016;185:411–414.
  • Witte F, Feyerabend F, Maier P, et al. Biodegradable magnesium–hydroxyapatite metal matrix composites. Biomaterials. 2007;28:2163–2174.
  • Ye X, Chen M, Yang M, et al. In vitro corrosion resistance and cytocompatibility of nano-hydroxyapatite reinforced Mg–zn–zr composites. J Mater Sci: Mater Med. 2010;21:1321–1328.
  • Zhao J, Yu Z, Yu K, et al. Biodegradable behaviors of Mg-6%Zn- 5%Hydroxyapatite biomaterial. Adv Mater Res. 2011;239–242:1287–1291.
  • Gu X, Zhou W, Zheng Y, et al. Microstructure, mechanical property, bio-corrosion and cytotoxicity evaluations of Mg/HA composites. Mater Sci Eng C. 2010;30:827–832.
  • Viswanathan R, Rameshbabu N, Kennedy S, et al. Plasma electrolytic oxidation and characterization of spark plasma sintered magnesium/hydroxyapatite composites. Mater Sci Forum. 2013;765:827–831.
  • Ratna Sunil B, Ganapathy C, Sampath Kumar TS, et al. Processing and evaluating mechanical behavior of lamellar structured degradable magnesium-hydroxyapatite implants. J Mech Behav Biomed Mater. 2014;40:178–189.
  • Mishra RS, Ma ZY. Friction stir welding and processing. Mat Sci Eng R. 2005;50:1–78.
  • Ratna Sunil B, Sampath Kumar TS, Chakkingal U, et al. Friction stir processing of magnesium – nanohydroxyapatite composites with controlled in vitro degradation behavior. Mater Sci Eng C. 2014;39:315–324.
  • Ratna Sunil B, Sampath Kumar TS, Chakkingal U, et al. Nano-hydroxyapatite reinforced AZ31 magnesium alloy by friction stir processing: a solid state processing for biodegradable metal matrix composites. J Mater Sci: Mater Med. 2014;25(4):975–988.
  • Ratna Sunil B. Different strategies of secondary phase incorporation into metallic sheets by friction stir processing in developing surface composites. Int J Mech Mater Eng. 2016;11:12.
  • Mansfeld F. The polarization resistance technique for measuring corrosion currents. In: Fontana Mars G, Staehle Roger W, editors. Advances in corrosion science and engineering. Vol. 6. New York: Plenum Press; 1970.
  • ASTM Standard NACE TM0169/G31 – 12a. Standard practice for laboratory immersion corrosion testing of metals. West Conshohocken, PA: ASTM International; 2012.
  • Neil WC, Forsyth M, Howlett PC, et al. Corrosion of magnesium alloy ZE41 – the role of microstructural features. Corros Sci. 2009;51:387–394.
  • Ratna Sunil B, Kumar AA, Sampath Kumar TS, et al. Role of biomineralization on the degradation of fine grained AZ31 magnesium alloy processed by groove pressing. Mater Sci Eng C. 2013;33:1607–1615.

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