Polymer blend made from poly(ε - caprolactone)/chitosan (PCL/CHT) offers interesting opportunities for biological applications. The paper presents a new way to fabricate PCL/CHT double-porosity (macrovoids with interconnected microporosity) membrane materials from a chemical optimization of the solvent and non-solvent phases and from a modified phase inversion technique. By varying the PCL/CHT proportion, it is shown that it is possible to improve the chemical and physical properties of the CHT carbohydrate polymer. The PCL/CHT membranes are fully characterized in term of physico-chemical properties (ATR-FTIR, XRD and DSC) to understand the miscibility of the two-polymer blend. Morphological characterization by SEM shows that by increasing ...
Highly porous 3Dimensional (3D) scaffold becomes a promising alternative approach for bone repairing...
Recently, in the field of tissue engineering, fabrication of three-dimensional (3D) electrospun scaf...
Polyester films are modified with their bioactivity for tissue engineering by grafting a nano-struct...
International audienceIn this paper, we developed membrane scaffolds to mimic the biochemical and bi...
Over the last decades, three-dimensional (3D) scaffolds are unfolding many promising applications in...
Over the last decades, three-dimensional (3D) scaffolds are unfolding many promising applications in...
Over the last decades, three-dimensional (3D) scaffolds are unfolding many promising applications in...
In this paper, we developed membrane scaffolds to mimic the biochemical and biophysical properties o...
Two semicrystalline polymers were blended to fabricate porous scaffolds for tissue engineering appli...
Tissue engineering is an interdisciplinary field, wherein scientists from different backgrounds coll...
Two semicrystalline polymers were blended to fabricate porous scaffolds for tissue engineering appli...
Les matériaux à structure tridimensionnelle laissent entrevoir de nombreuses applications prometteus...
Polycaprolactone (PCL) and chitosan (CHT) are immiscible polymers. However, biodegradable porous sca...
Highly porous 3Dimensional (3D) scaffold becomes a promising alternative approach for bone repairing...
Highly porous 3Dimensional (3D) scaffold becomes a promising alternative approach for bone repairing...
Highly porous 3Dimensional (3D) scaffold becomes a promising alternative approach for bone repairing...
Recently, in the field of tissue engineering, fabrication of three-dimensional (3D) electrospun scaf...
Polyester films are modified with their bioactivity for tissue engineering by grafting a nano-struct...
International audienceIn this paper, we developed membrane scaffolds to mimic the biochemical and bi...
Over the last decades, three-dimensional (3D) scaffolds are unfolding many promising applications in...
Over the last decades, three-dimensional (3D) scaffolds are unfolding many promising applications in...
Over the last decades, three-dimensional (3D) scaffolds are unfolding many promising applications in...
In this paper, we developed membrane scaffolds to mimic the biochemical and biophysical properties o...
Two semicrystalline polymers were blended to fabricate porous scaffolds for tissue engineering appli...
Tissue engineering is an interdisciplinary field, wherein scientists from different backgrounds coll...
Two semicrystalline polymers were blended to fabricate porous scaffolds for tissue engineering appli...
Les matériaux à structure tridimensionnelle laissent entrevoir de nombreuses applications prometteus...
Polycaprolactone (PCL) and chitosan (CHT) are immiscible polymers. However, biodegradable porous sca...
Highly porous 3Dimensional (3D) scaffold becomes a promising alternative approach for bone repairing...
Highly porous 3Dimensional (3D) scaffold becomes a promising alternative approach for bone repairing...
Highly porous 3Dimensional (3D) scaffold becomes a promising alternative approach for bone repairing...
Recently, in the field of tissue engineering, fabrication of three-dimensional (3D) electrospun scaf...
Polyester films are modified with their bioactivity for tissue engineering by grafting a nano-struct...