Comparison study of porous calcium phosphate blocks prepared by piston and screw type extruders for bone scaffold

被引:0
作者
Sooyoung lim
Sungsu Chun
Dongjun Yang
Sukyoung Kim
机构
[1] Yeungnam Univ.,School of Materials Science & Eng.
[2] Megagen Implant,undefined
来源
Tissue Engineering and Regenerative Medicine | 2012年 / 9卷
关键词
porous ceramics; extrusion; bone substitute; hydroxyapatite; PMMA;
D O I
暂无
中图分类号
学科分类号
摘要
Piston and screw type extruders were used to prepare calcium phosphate blocks comprising macro-pores interconnected with micro-pores for bone substitutes and scaffolds. First, dicalcium phosphate dehydrate (DCPD, CaHPO4·2H2O), calcium nitrate tetrahydrate (CN, Ca(NO3)2·4H2O), hydroxyapatite (HAp, Ca10(PO4)6(OH)2), and polymer (poly-methyl methactrylate PMMA, (C5O2H8)n) beads were mixed with lubricants and a plasticizer to make a paste using a table mixer. The paste prepared for the screw extruder was thicker than that prepared for the piston extruder. The pastes were kneaded more than three times and then extruded. The extruded rods were dried at 100°C for 24hrs and sintered at 1250°C for 5hrs in the air. The porosity increased with increasing amount of DCPD and CN in both systems. The porosity of the piston extruded rod was higher than that of the screw extruder rod for the same raw material composition, except for the pure HAp porous bodies. In contrast to the porosity, the compressive strength was decreased upon the addition of DCPD and CN. The screw extruded specimens showed higher compressive strength than piston extruded ones. The macro-pores generated from the PMMA polymer beads were interconnected by micro-pores generated by the reaction of DCPD and CN, which existed in the strut. The SEM images clearly showed that the piston extruder generated more micro-pores than the screw extruder. The reaction of DCPD and CN affects the porosity, compressive strength and pore structure of the porous blocks. Also, the extruding method affects the pore characteristics.
引用
收藏
页码:51 / 55
页数:4
相关论文
共 26 条
[1]  
Langer R.(1993)Tissue engineering Science 260 920-undefined
[2]  
Vacanti J.P.(2002)Third-generation biomedical materials Science 295 1014-undefined
[3]  
Hench L.L.(1999)Manufacture of macroporous calcium hydroxyapatite bioceramics J E Ceram Soc 19 2569-undefined
[4]  
Polak J.M.(2002)Novel synthesis and characterization of an AB-type carbonate-substituted hydroxyapatite J BiomedMater Res 59 697-undefined
[5]  
Engin N.O.(2003)Solid freeform fabrication of three-dimensional scaffolds for engineering replacement tissues and organs Biomaterials 24 2363-undefined
[6]  
Tas A.C.(2001)In vitro biocompatibility of resorbable experimental glass ceramics for bone substitutes J Biomed Mater Res 55 285-undefined
[7]  
Gibson I.R.(1998)Properties and cytotoxicity of water soluble Na Biomaterials 19 2277-undefined
[8]  
Bonfield W.(2003)O-CaO-P J Am Ceram. Soc 86 1906-undefined
[9]  
Leong K.F.(2000)O J Am Ceram Soc 83 1581-undefined
[10]  
Cheah C.M.(2000) glasses J Eur Ceram Soc 20 807-undefined