Design and Fabrication of 3D printed Scaffolds with a Mechanical Strength Comparable to Cortical Bone to Repair Large Bone Defects.
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Novel Poly(3-hydroxybutyrate-g-vinyl alcohol) Polyurethane Scaffold for Tissue EngineeringDouble-Network Hydrogel with Tunable Mechanical Performance and Biocompatibility for the Fabrication of Stem Cells-Encapsulated Fibers and 3D Assemble.Biphasic organo-bioceramic fibrous composite as a biomimetic extracellular matrix for bone tissue regenerationEffects of Sr-HT-Gahnite on osteogenesis and angiogenesis by adipose derived stem cells for critical-sized calvarial defect repairDoped Calcium Silicate Ceramics: A New Class of Candidates for Synthetic Bone Substitutes.Biological characteristic effects of human dental pulp stem cells on poly-ε-caprolactone-biphasic calcium phosphate fabricated scaffolds using modified melt stretching and multilayer deposition.Computationally designed lattices with tuned properties for tissue engineering using 3D printing.Fracture behaviors of ceramic tissue scaffolds for load bearing applications.Full deflection profile calculation and Young's modulus optimisation for engineered high performance materialsIn vitro response of macrophages to ceramic scaffolds used for bone regenerationCurrent Approaches to Bone Tissue Engineering: The Interface between Biology and Engineering.3D Powder Printed Bioglass and β-Tricalcium Phosphate Bone Scaffolds.3D-Printing Technologies for Craniofacial Rehabilitation, Reconstruction, and Regeneration.Recent Advances in Biomaterials for 3D Printing and Tissue Engineering.Bioceramics and bone healing.Review of additive manufactured tissue engineering scaffolds: relationship between geometry and performance.3D-printed scaffolds of mesoporous bioglass/gliadin/polycaprolactone ternary composite for enhancement of compressive strength, degradability, cell responses and new bone tissue ingrowthStochastic fracture of additively manufactured porous compositesEffects of curing and organic content on bioactivity and mechanical properties of hybrid sol–gel glass scaffolds made by indirect rapid prototyping
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P2860
Design and Fabrication of 3D printed Scaffolds with a Mechanical Strength Comparable to Cortical Bone to Repair Large Bone Defects.
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2016 nî lūn-bûn
@nan
2016 թուականի Յունուարին հրատարակուած գիտական յօդուած
@hyw
2016 թվականի հունվարին հրատարակված գիտական հոդված
@hy
2016年の論文
@ja
2016年論文
@yue
2016年論文
@zh-hant
2016年論文
@zh-hk
2016年論文
@zh-mo
2016年論文
@zh-tw
2016年论文
@wuu
name
Design and Fabrication of 3D p ...... e to Repair Large Bone Defects
@nl
Design and Fabrication of 3D p ...... to Repair Large Bone Defects.
@ast
Design and Fabrication of 3D p ...... to Repair Large Bone Defects.
@en
type
label
Design and Fabrication of 3D p ...... e to Repair Large Bone Defects
@nl
Design and Fabrication of 3D p ...... to Repair Large Bone Defects.
@ast
Design and Fabrication of 3D p ...... to Repair Large Bone Defects.
@en
prefLabel
Design and Fabrication of 3D p ...... e to Repair Large Bone Defects
@nl
Design and Fabrication of 3D p ...... to Repair Large Bone Defects.
@ast
Design and Fabrication of 3D p ...... to Repair Large Bone Defects.
@en
P2860
P3181
P356
P1433
P1476
Design and Fabrication of 3D p ...... to Repair Large Bone Defects.
@en
P2093
Peter Newman
Seyed-Iman Roohani-Esfahani
P2860
P2888
P3181
P356
10.1038/SREP19468
P407
P50
P577
2016-01-19T00:00:00Z
P5875
P6179
1026433514