Biomedical Engineering Reference
In-Depth Information
A. Tampieri, G. Celotti, S. Sprio, et al. 2001. Porosity-graded hydroxyapatite ceramics
to replace natural bone. Biomaterials 22(11): 1365-1370.
A. Tampieri, S. Sprio, A. Ruffini, et al. 2009. From wood to bone: Multi-step process to
convert wood hierarchical structures into biomimetic hydroxyapatite scaffolds
for bone tissue engineering. Journal of Materials Chemistry 19(28): 4973-4980.
D. C. Tancred, B. A. O. McCormack, and A. J. Carr. 1998. A synthetic bone implant
macroscopically identical to cancellous bone. Biomaterials 19(24): 2303-2311.
X. L. Tang, X. F. Xiao, and R. F. Liu. 2005. Structural characterization of silicon-substi-
tuted hydroxyapatite synthesized by a hydrothermal method. Materials Letters
59(29-30): 3841-3846.
A. C. Tas. 2000. Synthesis of biomimetic Ca-hydroxyapatite powders at 37 degrees C
in synthetic body fluids. Biomaterials 21(14): 1429-1438.
P. Thevenot, W. J. Hu, and L. P. Tang. 2008. Surface chemistry influences implant bio-
compatibility. Current Topics in Medicinal Chemistry 8(4): 270-280.
M. Uchida, H. M. Kim, T. Kokubo, et al. 2001. Apatite-forming ability of sodium-
containing titania gels in a simulated body fluid. Journal of the American Ceramic
Society 84(12): 2969-2974.
M. Vaahtio, T. Peltola, T. Hentunen, et al. 2006. The properties of biomimetically pro-
cessed calcium phosphate on bioactive ceramics and their response on bone
cells. Journal of Materials Science-Materials in Medicine 17(11): 1113-1125.
M. Vallet-Regi and D. Arcos. 2005. Silicon substituted hydroxyapatites. A method
to upgrade calcium phosphate based implants. Journal of Materials Chemistry
15(15): 1509-1516.
M. Vallet-Regi and J. M. Gonzalez-Calbet. 2004. Calcium phosphates as substitution
of bone tissues. Progress in Solid State Chemistry 32(1-2): 1-31.
D. Veljović, B. Jokić, R. Petrović, et al. 2009. Processing of dense nanostructured HAP
ceramics by sintering and hot pressing. Ceramics International 35(4): 1407-1413.
X. Wang, Y. Li, J. Wei, et al. 2002. Development of biomimetic nano-hydroxyapatite/
poly(hexamethylene adipamide) composites. Biomaterials 23(24): 4787-4791.
T. J. Webster, C. Ergun, R. H. Doremus, et al. 2001. Enhanced osteoclast-like cell func-
tions on nanophase ceramics. Biomaterials 22(11): 1327-1333.
U. G. K. Wegst, M. Schecter, A. E. Donius, et al. 2010. Biomaterials by freeze cast-
ing. Philosophical Transactions of the Royal Society A: Mathematical, Physical and
Engineering Sciences 368(1917): 2099-2121.
M. Wei, M. Uchida, H. M. Kim, et al. 2002. Apatite-forming ability of CaO-containing
titania. Biomaterials 23(1): 167-172.
H. B. Wen, J. G. C. Wolke, J. R. deWijn, et al. 1997. Fast precipitation of calcium phos-
phate layers on titanium induced by simple chemical treatments. Biomaterials
18(22): 1471-1478.
R. A. White, J. N. Weber, and E. W. White. 1972. Replamineform: A new process for
preparing porous ceramic, metal, and polymer prosthetic materials. Science
176(4037): 922-924.
A. K. A. R. Wijenayaka, C. B. Colby, G. J. Atkins, et al. 2009. Biomimetic hydroxyapa-
tite coating on glass coverslips for the assay of osteoclast activity in vitro . Journal
of Materials Science-Materials in Medicine 20(7): 1467-1473.
C. J. Wilson, R. E. Clegg, D. I. Leavesley, et al. 2005. Mediation of biomaterial-cell
interactions by adsorbed proteins: A review. Tissue Engineering 11(1-2): 1-18.
C. T. Wu and J. Chang. 2004. Synthesis and apatite-formation ability of akermanite.
Materials Letters 58(19): 2415-2417.
Search WWH ::




Custom Search