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Mechanical and corrosion properties of magnesivm-bioceramic nanocomposites

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Języki publikacji
EN
Abstrakty
EN
Mechanical and corrosion properties of magnesivm-bioceramic nanocomposites Magnesium alloys have recently attracted much attention as a new generation of biodegradable metallic materials. In this work, MglMnlZn0.3Zr-bioceramic nanocomposites and their scaffolds were synthesized using a combination of mechanical alloying and a space-holder sintering process. The phase and microstructure analysis was carried out using X-ray diffraction, scanning electron microscopy and the properties were measured using hardness and corrosion testing equipment. Nanostructured Mg-bioceramic composites with a grain sizes below 73 run were synthesized. The Vickers hardnesses for the bulk nanostructured Mg-based composites are two times greater than that of pure rnicrocrystalline Mg metal (50 HV0.3). Produced Mg-based bionanomaterials can be applied in medicine.
Twórcy
autor
  • Poznan University of Technology, Institute of Materials Science and Engineering, Poznan, Poland
autor
  • Poznan University of Technology, Institute of Materials Science and Engineering, Poznan, Poland
autor
  • Poznan University of Technology, Institute of Materials Science and Engineering, Poznan, Poland
Bibliografia
  • [1] F. Witte. Acta Biornater. 6, 1680-92 (2010).
  • [2] M. Li, Y. F. Zheng, J. Mater. Sei. Technol. 29,489-502 (2013).
  • [3] N. Li, C. Guo, Y. H. Wu, Y. F. Zheng, L. Q. Ruan. Corr. Eng. Sei. Techn. 47, 346-351 (2012).
  • [4] Q. Ma, D. Graham, L. Zheng, D. H. StJohn, M. T. Frost Mater. Sei. Tech.-Lond. 19, 156-162 (2003).
  • [5] W. P. Cao, L. Hench, Ceram. Int. 22, 493-507 (1996).
  • [6] B. C. Ward, T. J. Webster. Mat. Sei. Eng. C 27, 575-578 (2007).
  • [7] M. Tulinski, M. Jurczyk, Appl. Surface Sei. 260, 80- 83 (2012).
  • [8] M. Szymanek, B. Augustyn, D. Kapinos, S. Boczkal, J. Nowak, Arch. Metal. Mater. 59, 317-321 (2014).
  • [9] K. Jurczyk, G. Adamek, M. M. Kubicka, J. Jakubowicz, M. Jurczyk, Materials 8, 1398-1412 (2015).
  • [10] F. Witte, F. Feyerabed, P. Maier, J. Fischeer, M. Störner, C. Blawert, W. Dietzel, N. Hort., Biomaterials 28, 2163-2174 (2007).
  • [11] K. A. Khalil, Int. J. Electrochem. Sei. 7,10698-10710 (2012).
  • [12] A. K. Khanra, K. C. Jung, S. H. Yu, K. S. Hong, K. S. Shin. Bull. Mater. Sei. 33, 43-47 (2010).
  • [13] A. C. Fisher-Cripps. Nanoindentation. 3rd ed., Springer. New York (2011).
  • [14] M. Razavi, M. H. Fathi, M. Meratian, Mater. Charact. 61, 1363-1370 (2010).
Uwagi
EN
The work was financed by National Science Centre Poland under the decision no. DEC-2013/11/B/ST8/04394
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-4d7b882d-34b1-4f3a-bd13-30df74adf513
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