Literature DB >> 15348018

alpha-Tricalcium phosphate hydrolysis to hydroxyapatite at and near physiological temperature.

C Durucan1, P W Brown.   

Abstract

The kinetics of hydroxyapatite (HAp) formation by direct hydrolysis of alpha-tricalcium phosphate (alpha-TCP) [alpha-Ca(3)(PO(4))(2)] have been investigated. Transformation kinetics were examined for reactions at 37 degrees C, 45 degrees C and 56 degrees C by isothermal calorimetric analysis. Setting times and morphologies of the resultant HAp were found to be strongly dependent on reaction temperature. XRD analysis accompanied by FTIR confirmed that phase pure calcium-deficient hydroxyapatite (CDHAp) [Ca(10-x)(HPO(4))(x)(PO(4))(6-x)(OH)(2-x)] was formed. Complete reaction occurs within 18, 11, 6.5 h at 37, 45 and 56 degrees C, respectively. The extent of HAp formation differs for particulate slurries and pre-shaped forms of reactant alpha-TCP. Formation of hydroxyapatite in pre-formed pellets was hindered due to limited water penetration, but enhanced with the presence of NaCl as a pore generator. Regardless of the precursor characteristics and temperature, HAp formation is characterized by an initial period of wetting of the alpha-TCP precursor, an induction period and a growth period during which the bulk transformation to HAp occurs. The microstructures of the resultant HAp at all temperatures were generally similar and are characterized by the formation porous flake-like morphology. Microstructural coarsening was observed for the CDHAp formed above the physiological temperature. The hardening generated by the hydrolysis reaction was demonstrated using diametrical compression tests. The original tensile strength of 56% dense alpha-TCP increased from 0.70+/-0.1 MPa to 9.36+/-0.4 MPa after hydrolysis to CDHAp at 37 degrees C, corresponding to a density of 70%. Copyright 2000 Kluwer Academic Publishers

Entities:  

Year:  2000        PMID: 15348018     DOI: 10.1023/a:1008934024440

Source DB:  PubMed          Journal:  J Mater Sci Mater Med        ISSN: 0957-4530            Impact factor:   3.896


  12 in total

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Authors:  R I Martin; P W Brown
Journal:  J Biomed Mater Res       Date:  1997-06-05

2.  Evaluation of a new dense-porous hydroxylapatite endosteal dental implant.

Authors:  N Hosaka; T Nagata
Journal:  J Oral Maxillofac Surg       Date:  1987-07       Impact factor: 1.895

3.  Infra-red spectra of hydroxyapatite, octacalcium phosphate and pyrolysed octacalcium phosphate.

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Journal:  Arch Oral Biol       Date:  1966-05       Impact factor: 2.633

4.  Hydrolysis of alpha-tricalcium phosphate in NaF solutions.

Authors:  K S TenHuisen; P W Brown
Journal:  Biomaterials       Date:  1999-03       Impact factor: 12.479

Review 5.  Porous hydroxylapatite granules and blocks as alveolar ridge augmentation materials: a preliminary report.

Authors:  M E el Deeb; P C Tompach; A T Morstad
Journal:  J Oral Maxillofac Surg       Date:  1988-11       Impact factor: 1.895

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Journal:  Biomaterials       Date:  1986-05       Impact factor: 12.479

7.  Effects of magnesium on the formation of calcium-deficient hydroxyapatite from CaHPO4.2H2O and Ca4(PO4)2O.

Authors:  K S TenHuisen; P W Brown
Journal:  J Biomed Mater Res       Date:  1997-09-05

8.  Conversion of amorphous tricalcium phosphate into apatitic tricalcium phosphate.

Authors:  J C Heughebaert; G Montel
Journal:  Calcif Tissue Int       Date:  1982       Impact factor: 4.333

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Journal:  Scanning Microsc       Date:  1989-03

10.  Three-dimensional degradable porous polymer-ceramic matrices for use in bone repair.

Authors:  J E Devin; M A Attawia; C T Laurencin
Journal:  J Biomater Sci Polym Ed       Date:  1996       Impact factor: 3.517

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  15 in total

Review 1.  Calcium Phosphate Bioceramics: A Review of Their History, Structure, Properties, Coating Technologies and Biomedical Applications.

Authors:  Noam Eliaz; Noah Metoki
Journal:  Materials (Basel)       Date:  2017-03-24       Impact factor: 3.623

2.  Composite formation from hydroxyapatite with sodium and potassium salts of polyphosphazene.

Authors:  Y E Greish; J D Bender; S Lakshmi; P W Brown; H R Allcock; C T Laurencin
Journal:  J Mater Sci Mater Med       Date:  2005-07       Impact factor: 3.896

3.  Self-setting calcium orthophosphate formulations.

Authors:  Sergey V Dorozhkin
Journal:  J Funct Biomater       Date:  2013-11-12

4.  Design of an inorganic dual-paste apatite cement using cation exchange.

Authors:  Marc Bohner; Hanna Tiainen; Pascal Michel; Nicola Döbelin
Journal:  J Mater Sci Mater Med       Date:  2015-01-29       Impact factor: 3.896

5.  Calcium orthophosphates (CaPO4): occurrence and properties.

Authors:  Sergey V Dorozhkin
Journal:  Prog Biomater       Date:  2015-11-19

6.  Formation of calcium deficient HAp/collagen composites by hydrolysis of alpha-TCP.

Authors:  Ahmed H Touny; Sarit Bhaduri; Paul W Brown
Journal:  J Mater Sci Mater Med       Date:  2010-07-22       Impact factor: 3.896

7.  Osteoclastic cell behaviors affected by the α-tricalcium phosphate based bone cements.

Authors:  Sun-Ae Oh; Gil-Su Lee; Jeong-Hui Park; Hae-Won Kim
Journal:  J Mater Sci Mater Med       Date:  2010-09-21       Impact factor: 3.896

8.  Alginate combined calcium phosphate cements: mechanical properties and in vitro rat bone marrow stromal cell responses.

Authors:  Gil-Su Lee; Jeong-Hui Park; Jong-Eun Won; Ueon Sang Shin; Hae-Won Kim
Journal:  J Mater Sci Mater Med       Date:  2011-04-02       Impact factor: 3.896

9.  Dissolution and re-crystallization processes in multiphase silicon stabilized tricalcium phosphate.

Authors:  Loughlin Tuck; Roope Astala; Joel W Reid; Michael Sayer; Malcolm J Stott
Journal:  J Mater Sci Mater Med       Date:  2007-08-01       Impact factor: 3.896

Review 10.  Calcium orthophosphates: occurrence, properties, biomineralization, pathological calcification and biomimetic applications.

Authors:  Sergey V Dorozhkin
Journal:  Biomatter       Date:  2011 Oct-Dec
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