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International Journal of Metallurgical & Materials Engineering Volume 3 (2017), Article ID 3:IJMME-132, 8 pages
http://dx.doi.org/10.15344/2455-2372/2017/132
Research Article
Special Issue: Bioceramics: Designing, Applications and Challenges
Control of Ca/P Molar Ratio of Plate-shaped Hydroxyapatite Powders With an a(b)-axis Orientation and Their Thermal Stability

Yuki Mori and Mamoru Aizawa*

Department of Applied Chemistry, School of Science and Technology, Meiji University, 1-1-1 Higashimita, Tama-ku, Kawasaki 214-8571, Japan
Dr. Mamoru Aizawa, Department of Applied Chemistry, School of Science and Technology, Meiji University, 1-1-1 Higashimita, Tama-ku, Kawasaki 214-8571, Japan, Tel: +81-44-934-7237; E-mail: mamorua@meiji.ac.jp
17 January 2017; 14 March 2017; 16 March 2017
Mori Y, Aizawa M (2017) Control of Ca/P Molar Ratio of Plate-shaped Hydroxyapatite Powders With an a(b)-axis Orientation and Their Thermal Stability. Int J Metall Mater Eng 3: 132. doi: https://doi.org/10.15344/2455-2372/2017/132

References

  1. Thian ES, Huang J, Aizawa M (2017) Nanobioceramics for Healthcare Applications. London: World Scientific Publishing Europe Ltd., The United Kingdom of Great Britain and Northern Ireland, 108 p. View
  2. Zhou H, Lee J (2011) Nanoscale hydroxyapatite particles for bone tissue engineering. Acta Biomater 7: 2769-2781. View
  3. Dorozhkin SV (2016) Calcium Orthophosphate-Based Bioceramics and Biocomposites. (1st edition), Weinheim: Wiley-VCH Verlag GmbH and Co. KGaA, Germany, 190 p.
  4. Kawasaki T, Takahashi S, Ikeda K (1985) Hydroxyapatite high-performance liquid chromatography: column performance for proteins. Eur J Biochem 152: 361-371. View
  5. Kawasaki T, Niikura M, Kobayashi Y (1990) Fundamental study of hydroxyapatite high-performance liquid chromatography: III. Direct experimental confirmation of the existence of two types of adsorbing surface on the hydroxyapatite crystal. J Chromatogr A 515: 125-148. View
  6. Kawasaki T (1991) Hydroxyapatite as a liquid chromatographic packing. J Chromatogr A 544: 147-184. View
  7. HA Ultrogel Hydroxyapatite Chromatography Sorbent. View
  8. kay MI, Young RA, Posner AS (1964) Crystal structure of hydroxyapatite. Nature 204: 1050-1052. View
  9. Daculsi G, Kerebel B (1978) High-resolution electron microscope study of human enamel crystallites: size, shape, and growth. J Ultrastruct Res 65: 163-172. View
  10. Nakano T, Kaibara K, Tabata Y, Nagata N, Enomoto S, et al. (2002) Unique alignment and texture of biological apatite crystallites in typical calcified tissues analyzed by microbeam X-ray diffractometer system. Bone 31: 479- 487. View
  11. Aizawa M, Porter AE, Best SM, Bonfield W (2005) Ultrastructural observation of single-crystal apatite fibres. Biomaterials 26: 3427-3433. View
  12. Aizawa M, Ueno H, Itatani K, Okada I (2006) Syntheses of calciumdeficient apatite fibres by a homogeneous precipitation method and their characterizations. J Eur Ceram Soc 26: 501-507. View
  13. Yoshimura M, Suda H, Okamoto K, Ioku K (1994) Hydrothermal synthesis of biocompatible whiskers. J Mater Sci 29: 3399-3402. View
  14. Zhu R, Yu R, Yao J, Wang D, Ke J (2008) Morphology control of hydroxyapatite through hydrothermal process. J Alloy Compd 457: 555- 559. View
  15. Zhang H, Darvell BW (2010) Synthesis and characterization of hydroxyapatite whiskers by hydrothermal homogeneous precipitation using acetamide. Acta Biomater 6: 3216-3222. View
  16. Zhang H, Darvell BW (2011) Morphology and structural characteristics of hydroxyapatite whiskers: effect of the initial Ca concentration, Ca/P ratio and pH. Acta Biomater 7: 2960-2968. View
  17. Ban S, Maruno S (1998) Morphology and microstructure of electrochemically deposited calcium phosphates in a modified simulated body fluid. Biomaterials 19: 1245-1253. View
  18. Ban S, Hasegawa J (2002) Morphological regulation and crystal growth of hydrothermal-electrochemically deposited apatite. Biomaterials 23: 2965- 2972. View
  19. Zhuang Z, Yamamoto H, Aizawa M (2012) Synthesis of plate-shaped hydroxyapatite via an enzyme reaction of urea with urease and its characterization. Powder Technol 222: 193-200. View
  20. Sathish M, Miyazawa K (2007) Size-tunable hexagonal fullerene (C60) nanosheets at the liquid-liquid interface. J Am Chem Soc 129: 13816- 13817. View
  21. Bai X, Zheng L, Li N, Dong B, Liu H (2008) Synthesis and characterization of microscale gold nanoplates using langmuir monolayers of long-chain ionic liquid. Cryst Growth Des 8: 3840-3846. View
  22. Wang CW, Ding HP, Xin GQ, Chen X, Lee YI, et al. (2009) Silver nanoplates formed at the air/water and solid/water interfaces. Colloids Surf A 340: 93- 98. View
  23. Chen KC, Wang CW, Lee YI, Liu HG (2011) Nanoplates and nanostars of ß-PbO formed at the air/water interface. Colloids Surf A 373: 124-129.
  24. Zhuang Z, Yoshimura H, Aizawa M (2013) Synthesis and ultrastructure of plate-like apatite single crystals as a model for tooth enamel. Mater Sci Eng C Mater Biol Appl 33: 2534-2540. View
  25. Byrappa K, Yoshimura H (2013) Handbook of Hydrothermal Technology. (2nd edition), New York: William Andrew, Inc., The United States of America, 37 p.
  26. Grayson M, Griffith EJ (1969) Topics in Phosphorus Chemistry. New Jersey: John Wiley and Sons, The United States of America, 282 p.
  27. Raynaud S, Champion E, Bernache-Assollant D, Thomas P (2002) Calcium phosphate apatites with variable Ca/P atomic ratio I. Synthesis, characterisation and thermal stability of powders. Biomaterials 23: 1065- 1072. View