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Strong and tough mineralized PLGA nanofibers for tendon-to-bone scaffolds
Pavan V. Kolluru
, Justin Lipner
, Wenying Liu
, Younan Xia
, Stavros Thomopoulos
,
Guy M. Genin
, Ioannis Chasiotis
Department of Mechanical Engineering & Materials Science
Roy and Diana Vagelos Division of Biology & Biomedical Sciences (DBBS)
DBBS - Plant and Microbial Biosciences
DBBS - Developmental, Regenerative and Stem Cell Biology
DBBS - Biochemistry, Biophysics, and Structural Biology
Institute of Clinical and Translational Sciences (ICTS)
Research output
:
Contribution to journal
›
Article
›
peer-review
62
Scopus citations
Overview
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Keyphrases
Tendon-bone Interface
100%
PLGA Nanofibers
100%
Bone Scaffold
100%
Nanofibers
50%
Hydroxyapatite
50%
Material System
50%
Multiple Tissues
25%
Stiffness
25%
Materials Science
25%
Fibrous Network
25%
Ductility
25%
Insertion Site
25%
Electrospun
25%
Fundamental Challenges
25%
Nanofibrous
25%
Toughness
25%
Biomimetic Materials
25%
Surface Mineralization
25%
Percentage Elongation
25%
High Toughness
25%
Fiber Strength
25%
Cross-sectional Morphology
25%
Poly(lactide-co-glycolide)
25%
Largest Extension
25%
Hardening Behavior
25%
Strain Softening
25%
Mineral Coating
25%
Tendon-to-bone Insertion
25%
Engineering
Nanofiber
100%
Material System
33%
Hardening Behavior
33%
Engineering
16%
Electrospun
16%
Cross Section
16%
Mineralisation
16%
Toughening
16%
Fiber Strength
16%
Glycolide
16%
Strain Hardening
16%
Biomimetic Material
16%
Rigidity
16%
Material Science
Nanofiber
100%
Surface (Surface Science)
33%
Mineral Coating
16%
Work Hardening
16%
Biomimetic Material
16%
Chemical Engineering
Hydroxyapatite
100%
Biomimetics
50%