Porous wollastonite–hydroxyapatite bioceramics from a preceramic polymer and micro- or nano-sized fillers
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E. Bernardo | L. Treccani | K. Rezwan | I. Cacciotti | P. Colombo | A. Bianco | R. Bedini | R. Pecci | Karoline Pardun
[1] E. Bernardo,et al. Mullite/Zirconia Nanocomposites from a Preceramic Polymer and Nanosized Fillers , 2011 .
[2] S. Dorozhkin. Medical Application of Calcium Orthophosphate Bioceramics , 2011 .
[3] Paolo Colombo,et al. Polymer‐Derived Ceramics: 40 Years of Research and Innovation in Advanced Ceramics , 2010 .
[4] Delbert E. Day,et al. Glass and Medicine , 2010 .
[5] M. Lombardi,et al. Mg-substituted hydroxyapatite nanopowders: Synthesis, thermal stability and sintering behaviour , 2009 .
[6] E. Bernardo,et al. Development of multiphase bioceramics from a filler-containing preceramic polymer , 2009 .
[7] E. Bernardo,et al. Advanced ceramics from a preceramic polymer and nano-fillers , 2009 .
[8] M. Lombardi,et al. Si-substituted hydroxyapatite nanopowders: synthesis, thermal stability and sinterability , 2009 .
[9] E. Bernardo,et al. Kinetic Studies of Mullite Synthesis from Alumina Nanoparticles and a Preceramic Polymer , 2008 .
[10] M. Vallet‐Regí,et al. Upgrading Calcium Phosphate Scaffolds for Tissue Engineering Applications , 2008 .
[11] Feng Liang,et al. Fabrication of porous ultra-short single-walled carbon nanotube nanocomposite scaffolds for bone tissue engineering. , 2007, Biomaterials.
[12] M. Lombardi,et al. Thermal stability and sintering behaviour of hydroxyapatite nanopowders , 2007 .
[13] G. Muzio,et al. Development of glass-ceramic scaffolds for bone tissue engineering: characterisation, proliferation of human osteoblasts and nodule formation. , 2007, Acta biomaterialia.
[14] E. Bernardo,et al. SiAlON‐Based Ceramics from Filled Preceramic Polymers , 2006 .
[15] Jinlin Wang,et al. Measurements of nanofluid viscosity and its implications for thermal applications , 2006 .
[16] Motofumi Suzuki,et al. Vapor phase growth of Al whiskers induced by glancing angle deposition at high temperature , 2006 .
[17] E. Bernardo,et al. Novel Mullite Synthesis Based on Alumina Nanoparticles and a Preceramic Polymer , 2006 .
[18] N. Shimpi,et al. Mechanical and flame‐retarding properties of styrene–butadiene rubber filled with nano‐CaCO3 as a filler and linseed oil as an extender , 2005 .
[19] E. Bernardo,et al. Macro- and micro-cellular porous ceramics from preceramic polymers , 2003 .
[20] Peter Greil,et al. Polymer Derived Engineering Ceramics , 2000 .
[21] A. Boccaccini. On the viscosity of glass composites containing rigid inclusions , 1998 .
[22] T. Kokubo,et al. Bioactive glass ceramics: properties and applications. , 1991, Biomaterials.
[23] D. Rowcliffe,et al. Modeling Density Contributions in Preceramic Polymer/Ceramic Powder Systems , 1986 .
[24] A. V. Belyakov,et al. Conditions of shaping ceramics with a polyorganosiloxane bond , 1980 .
[25] W. Hayes,et al. Bone compressive strength: the influence of density and strain rate. , 1976, Science.
[26] Ralph Müller,et al. Micro-computed tomography: a method for the non-destructive evaluation of the three-dimensional structure of biological specimens. , 2008, Methods in molecular biology.
[27] Jiang Chang,et al. Low temperature fabrication and characterizations of β-CaSiO3 ceramics , 2006 .
[28] E. Bernardo,et al. Novel Microcellular Ceramics from a Silicone Resin , 2004 .
[29] D. Deligianni,et al. Effect of surface roughness of hydroxyapatite on human bone marrow cell adhesion, proliferation, differentiation and detachment strength. , 2001, Biomaterials.
[30] M. Ashby,et al. Cellular solids: Structure & properties , 1988 .