This study demonstrates the usefulness of the lithography-based ceramic 3-dimensional printing technique with a specifically designed top-down process for the production of porous calcium phosphate (CaP) ceramic scaffolds with tailored pore orientations and mechanical properties. The processing parameters including the preparation of a photocurable CaP slurry with a high solid loading (φ = 45 vol%), the exposure time for photocuring process, and the initial designs of the porous scaffolds were carefully controlled. Three types of porous CaP scaffolds with different pore orientations (i.e., 0°/90°, 0°/45°/90°/135°, and 0°/30°/60°/90°/120°/150°) were produced. All the scaffolds exhibited a t...
Bone ingrowth requires materials with the existence of open and interconnected pores with diameters ...
This study proposes a new type of calcium phosphate (CaP) scaffolds with a continuously gradient mac...
This work compares two novel techniques for the fabrication of ceramic scaffolds for bone tissue eng...
This study demonstrates the usefulness of the lithography-based ceramic 3-dimensional printing techn...
In this study, we describe the additive manufacturing of porous three-dimensionally (3D) printed cer...
This paper demonstrates the utility of coextrusion-based 3D plotting of ceramic pastes (CoEx-3DP) as...
Abstract. Three dimensional printing was investigated for fabricating hydroxyapatite (HA) andtricalc...
Silicate bioceramic scaffolds are of great interest in bone tissue engineering, but the fabrication ...
Adopting the beneficial chemical composition of mineral bone grafts and the interesting biomedical p...
Calcium silicate (CaSiO3, CS) ceramics have received significant attention for application in bone r...
AbstractAdditive manufacturing methods such as three-dimensional printing (3DP) show a great potenti...
Acquiring high-performance calcium phosphate (CaP) ceramics via 3D printing is critical for their ap...
Calcium phosphate ceramics, commonly applied as bone graft substitutes, are a natural choice of scaf...
Abstract Additive manufacturing methods such as three-dimensional printing (3DP) show a great potent...
Synthetic calcium phosphates (CaP) are widely used as bone scaffolds due to their biocompatibility a...
Bone ingrowth requires materials with the existence of open and interconnected pores with diameters ...
This study proposes a new type of calcium phosphate (CaP) scaffolds with a continuously gradient mac...
This work compares two novel techniques for the fabrication of ceramic scaffolds for bone tissue eng...
This study demonstrates the usefulness of the lithography-based ceramic 3-dimensional printing techn...
In this study, we describe the additive manufacturing of porous three-dimensionally (3D) printed cer...
This paper demonstrates the utility of coextrusion-based 3D plotting of ceramic pastes (CoEx-3DP) as...
Abstract. Three dimensional printing was investigated for fabricating hydroxyapatite (HA) andtricalc...
Silicate bioceramic scaffolds are of great interest in bone tissue engineering, but the fabrication ...
Adopting the beneficial chemical composition of mineral bone grafts and the interesting biomedical p...
Calcium silicate (CaSiO3, CS) ceramics have received significant attention for application in bone r...
AbstractAdditive manufacturing methods such as three-dimensional printing (3DP) show a great potenti...
Acquiring high-performance calcium phosphate (CaP) ceramics via 3D printing is critical for their ap...
Calcium phosphate ceramics, commonly applied as bone graft substitutes, are a natural choice of scaf...
Abstract Additive manufacturing methods such as three-dimensional printing (3DP) show a great potent...
Synthetic calcium phosphates (CaP) are widely used as bone scaffolds due to their biocompatibility a...
Bone ingrowth requires materials with the existence of open and interconnected pores with diameters ...
This study proposes a new type of calcium phosphate (CaP) scaffolds with a continuously gradient mac...
This work compares two novel techniques for the fabrication of ceramic scaffolds for bone tissue eng...