Biomedical Engineering Reference
In-Depth Information
coatings for medical implants. Proc. Inst.
Mech. Engrs. 212 (part H): 437.
Denissen, H. W., DeGroot, K., Driessen, A.
A., Wolke, J. G. C., Peelen, J. G. J., van
Dijk, H. J. A., Gehring, A. P., and
Klopper, P. J. (1980a). Hydroxylapatite
implants: Preparation, properties and
use in alveolar ridge preservation. Sci
Ceram. 10: 63.
Denissen, H. W., DeGroot, K., Klopper, P.
J., van Dijk, H. J. A., Vermeiden, J. W. P.,
and Gehring, A. P. (1980b). Biological
and mechanical evaluation of calcium
hydroxypatite made by hot pressing. in
Mechanical Properties of Biomaterials,
Chapter 40, Eds. Hastings, G. W., and
Williams, D. F. John Wiley and Sons,
New York.
De With, G., van Dijk, H. J. A., and Hattu,
N. (1981a). Mechanical behaviour of
biocompatible hydroxyapatite ceramics.
Proc. Brit. Ceram. Soc. 31: 181.
De With, G., van Dijk, H. J. A., Hattu, N.,
and Prijs, K. (1981b). Preparation,
microstructure and mechanical
properties of dense polycrystalline
hydroxyapatite. J . Mat. Sci. 16: 1592.
Dickens, B., Schroeder, L. W., and Brown,
W. E. (1974). Crystallographic studies
of the role of Mg as a stabilising impurity
in b-tricalcium phosphate. J . Solid State
Chem. 10: 232.
Driessen, A. A., Klein, C. P. A. T., and de
Groot, K. (1982). Preparation and some
properties of sintered ß-Whitlockite.
Biomaterials 3:113-116.
Driessens, F. C. M. (1983). Formation and
stability of calcium phopshate in relation
to the phase composition of the mineral
in calcified tissue. in Bioceramics of
Calcium Phosphate, Ed. DeGroot, K.
CRC Press, Boca Raton, Florida.
de Groot, K. (1983). Bioceramics of
Calcium-Phosphate. CRC Press, Boca
Raton, FL.
de Groot, K. (1988). Effect of porosity and
physicochemical properties on the
stability, resorption, and strength of
calcium phosphate ceramics. in
Bioceramics: Material Characteristics
versus In-Vivo Behavior, Ann. N. Y.
Acad. Sci. 523: 227.
de Groot, K., and Le Geros, R. (1988). in
Position Papers in Bioceramics:
Materials Characteristics versus In-Vivo
Behavior, P. Ducheyne and J. Lemons,
eds. Ann. N. Y. Acad. Sci. 523: 227, 268,
272.
de Groot, K., Klein, C. P. A. T., Wolke, J. G.
C., and de Blieck-Hogervorst, J. (1990).
Chemistry of calcium phosphate
bioceramics. in Handbook on Bioactive
Ceramics, T. Yamamuro, L. L. Hench,
and J. Wilson, eds. CRC Press, Boca
Raton, FL, Vol. II, Ch. 1.
Drre, E., and Dawihl, W. (1980). Ceramic
hip endoprostheses. in Mechanical
Properties of Biomaterials, G. W.
Hastings and D. Williams, eds. Wiley,
New York, pp. 113-127.
Eanes, E. D., Gillessen, J. H., and Posner,
A.L. (1965). Intermediate states in the
precipitation of hydroxyapatite. Nature
208: 365.
Eggli, P.S., Muller, W., and Schenk, R.K.
(1988). Porous hydroxyapatite and
tricalcium phosphate cylinders with two
different pore size ranges implanted in
the cancellous bone of rabbits. Clin.
Orthop. Relat. Res. 232: 127-138.
Elliot, J. R. (1994). Structure and
Chemistry of Apatites and Other
Calcium Orthophosphate. Elsevier,
Amsterdam.
Fang, Y., Agrawal, D. K., Roy, D. M., and
Roy, R. (1992). Fabrication of Porous
Hydroxyapatite by Microwave
Processing. J . Mater. Res. 7(2): 490-
494.
Fernandez, E., Gil, F. X., Ginebra, M. P.,
Driessens, F. C. M., Planell, J. A, and
Best, S. M. (1999a). Calcium Phosphate
Bone Cements for Clinical Applications,
Part I, Solution Chemistry. J. Mater. Sci.
Mater. in Med. 10: 169-176.
Fernandez, E., Gil, F. X., Ginebra, M. P.,
Driessens, F. C. M., Planell, J. A, and
Best, S. M. (1999b). Calcium Phosphate
Bone Cements for Clinical Applications,
Part II, Precipitate Formation during
Setting Reactions. J. Mater. Sci. Mater.
in Med. 10: 177-184.
Fernandez, E., Planell, J. A., Best, S. M.,
and Bonfield W. (1998). Synthesis of
Dahllite Through a Cement Setting
Reaction, J. Mater. Sci. Mater. in Med.
9: 789-792.
Fowler, B.O. (1974). Infrared studies of
apatites, part II: Preparation of normal
and isotopically substituted calcium,
strontium and barium hydroxyapatites
and spectra-structure correlations.
Inorg. Chem. 13: 207.
Froum, S. J., Kushner, J., Scopp, L., and
Stahl, S. S. (1986). Human clinical and
histologic responses to durapatite
implants in intraosseous lesions: Case
reports. J . Periodontol. 53: 719-725.
Fujishiro, Y., Hench, L. L., and Oonishi, H.
(1997). Quantitative rates of in-vivo
bone generation for bioglass and
hydroxyapatite particels as bone graft
substitute, J . Mater. Sci. Mater. in Med.
8: 649-652.
Galgut, P. N., Waite, I. M., and Tinkler, S.
M. B. (1990). Histological investigation
of the tissue response to hydroxyapatite
used as an implant material in
periodontal treatment. Clin. Mater. 6:
105-121.
Gibson, I. R., Best, S. M., and Bonfield, W.
(1996). Phase transformations of
tricalcium phosphates using high
temperature x-ray diffraction,
Bioceramics 9, Eds. Kokubo, Nakamura,
and Miyaji, Publ. Pergamon Press,
Oxford, pp. 173-176.
Gibson, I. R., Best, S. M., and Bonfield, W.
(1999). Chemical characterisation of
silicon-substituted hydroxyapatite. J .
Biomed. Mater. Res. 44: 422-428.
Gross, V., and Strunz, V. (1985). The
interface of various glasses and glass-
ceramics with a bony implantation bed.
J . Biomed. Mater. Res. 19: 251.
Gross, V., Kinne, R., Schmitz, H. J., and
Strunz, V. (1988). The response of bone
to surface active glass/glass-ceramics.
CRC Crit. Rev. Biocompatibility 4:2.
Hayek, E., and Newsley, H. (1963).
Pentacalcium monohydroxy-
orthophosphate. Inorganic Synthesis 7:
63.
Hench, L. L., and Wilson, J. (1993). An
Introduction to Bioceramics. World
Scientific, Singapore.
Hing, K. A. (1995). Assessment of porous
hydroxyapatite for bone replacement.
PhD Thesis, University of London.
Hing, K. A., Best, S. M., and Bonfield, W.
(1999). Characterisation of porous
hydroxyapatite. J. Mater. Sci. Mater. in
Med. 10: 135-160.
Hing, K. A., Best, S. M., Tanner, K. E.,
Revell, P. A., and Bonfield, W. (1998).
Histomorphological and biomechamical
characterisation of calcium phosphates
in the osseous environment. Proc. Inst.
Mech. Engrs. 212 (part H): 437.
Holmes, R. E. (1979). Bone regeneration
within a coralline hydroxyapatite
implant. Plast. Reconstr. Surg. 63: 626-
633.
Hulbert, S. F., Young, F. A., Mathews, R. S.,
Klawitter, J. J., Talbert, C. D., and
Stelling, F. H. (1970). Potential of
ceramic materials as permenantly
implantable skeletal prosthesis. J.
Biomed. Mater. Res. 4: 433-456.
Hench, L. L. (1987). Cementless fixation.
in Biomaterials and Clinical
Applications, A. Pizzoferrato, P. G.
Marchetti, A. Ravaglioli, and A. J. C.
Lee, eds. Elsevier, Amsterdam, p. 23.
Hench, L. L. (1988). Bioactive ceramics. in
Bioceramics: Materials Characteristics
versus In-Vivo Behavior, P. Ducheyne
and J. Lemons, eds. Ann. N. Y. Acad.
Sci. 523: 54.
Search WWH ::




Custom Search