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Journal of Materials Science. Materials in Medicine|July 1, 1997
Optimization of benzoyl peroxide concentration in an experimental bone cement based on poly(methyl methacrylate)B Vazquez, S Deb, W BonfieldJournal of Biomedical Materials Research|November 25, 1998
Bioglass/high density polyethylene composite for soft tissue applications: preparation and evaluationM Wang, L L Hench, W BonfieldJournal of Materials Science. Materials in Medicine|September 7, 2004
Mechanical properties of hydroxyapatite reinforced poly(ethylmethacrylate) bone cement after immersion in a physiological solution: influence of a silane coupling agentE J Harper, M Braden, W BonfieldJournal of Orthopaedic Research : Official Publication of the Orthopaedic Research Society|June 12, 2001
Fatigue of cortical bone under combined axial-torsional loadingD Vashishth, K E Tanner, W BonfieldBiomaterials|August 1, 1996
In situ analysis of the degree of polymerization of bone cement by using FT-Raman spectroscopyI Rehman, E J Harper, W BonfieldJournal of Biomechanics|December 18, 2002
Experimental validation of a microcracking-based toughening mechanism for cortical boneD Vashishth, K E Tanner, W BonfieldBiomaterials|November 1, 1991
In vitro and in vivo evaluation of polyhydroxybutyrate and of polyhydroxybutyrate reinforced with hydroxyapatiteC Doyle, E T Tanner, W BonfieldJournal of Biomedical Materials Research|June 26, 1998
Analysis of in vitro reaction layers formed on Bioglass using thin-film X-ray diffraction and ATR-FTIR microspectroscopyI Rehman, J C Knowles, W BonfieldJournal of Materials Science. Materials in Medicine|September 7, 2004
In vitro response of osteoblasts to hydroxyapatite-reinforced polyethylene compositesL Di Silvio, M Dalby, W BonfieldJournal of Biomechanics|June 16, 2000
Contribution, development and morphology of microcracking in cortical bone during crack propagationD Vashishth, K E Tanner, W BonfieldPageof 16