Salt leaching using powder (SLUP) process for glass/chitosan scaffold elaboration for biomaterial applications

被引:0
作者
Jihen Refifi
Hassane Oudadesse
O. Merdrignac-Conanec
Hafed El Feki
Bertrand Lefeuvre
机构
[1] University Rennes,CNRS, ISCR
[2] University of Sfax,UMR 6226
来源
Journal of the Australian Ceramic Society | 2020年 / 56卷
关键词
Bioactive glass; Chitosan; Biomaterial; Salt leaching using powder; Porosity;
D O I
暂无
中图分类号
学科分类号
摘要
Tissue engineering has emerged as an alternative approach to create bone tissue by growing cells on 3D scaffolding. The aim of this study was to synthesize a composite glass/chitosan (BG-CH) by using new salt leaching using powder (SLUP) process in order to control the porosity rate and then the chemical reactivity of the final product. SLUP process consists on the cavity creation with desired pore sizes. It does not require heat treatment. This process is based on washing out the NaCl particles used for that. It is due to its high solubility in aqueous media. This work focuses on the elaboration, physicochemical, and chemical reactivity studies of pure bioactive glass and bioactive glass associated with chitosan. A range of composite scaffolds with different bioactive glass/chitosan contents has been synthesized. NaCl with a distinct range size was used with the aim of optimizing the pore network. Obtained results show that the specific surface area and pore volume increase with increasing of chitosan and porogen content. The same observations for pore volume were registered. The obtained scaffolds had high porosity (90%) with good pore connectivity. SEM images revealed strong dependence of sizes and shapes of pores on the salt/composite ratios.
引用
收藏
页码:1167 / 1178
页数:11
相关论文
共 132 条
  • [21] Nasrabadi B(2015)Processing and characterization of chitosan/PVA and methylcellulose porous scaffolds for tissue engineering Appl. Surf. Sci. 353 200-208
  • [22] Mehrasa M(2009)Preparation and characterization of chitosan-g-poly (vinyl alcohol)/poly(vinyl alcohol) blends used for the evaluation of blood-contacting compatibility Biomater. Sci. Polym. 20 2089-2101
  • [23] Rafienia M(2011)Hyaluronic acid based scaffolds for tissue engineering Int. J. Nanomedicine 6 1651-1659
  • [24] Bonakdard S(2011)Three-dimensional printing of porous ceramic scaffolds for bone tissue engineering Carbohydr. Polym. 84 990-996
  • [25] Behzada T(2015)Evaluation of the kinetic and relaxation time of gentamicin sulfate released from hybrid biomaterial Bioglass-chitosan scaffolds Carbohydr. Polym. 118 60-69
  • [26] Gavanjiea S(2014)Three-dimensional plotter technology for fabricating polymeric scaffolds with micro-grooved surfaces J. Therm. Anal. Calorim. 115 2137-2144
  • [27] Zhuanga PY(2013)HA/nylon 6,6 porous scaffolds fabricated by salt-leaching/solvent casting technique: effect of nano-sized filler content on scaffold properties Korean J. Chem. Eng. 30 1775-1783
  • [28] Li YL(1990)The mineralization of electrospun chitosan/poly(vinyl alcohol) nanofibrous membranes J. Biomed. Mater. Res. 24 721-734
  • [29] Fan L(2014)Investigation of Salecan/poly(vinyl alcohol) hydrogels prepared by freeze/thaw method Curr. Appl. Phys. 14 371-377
  • [30] Lin J(undefined)Thermal behaviour and excess entropy of bioactive glasses and Zn-doped glasses undefined undefined undefined-undefined