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  3. Absorbable mineral nanocomposite for biomedical applications: Influence of homogenous fiber dispersity on mechanical properties

Absorbable mineral nanocomposite for biomedical applications: Influence of homogenous fiber dispersity on mechanical properties

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DOI
10.7892/boris.120072
Publisher DOI
10.1002/jbm.a.36284
PubMed ID
29094503
Abstract
Electrospun micro‐ and nanosized fibers are frequently used as reinforcing elements in low temperature ceramic composites for biomedical applications. Electrospinning of fibers yield, however, not individual fibers, but rather fiber‐mats that are difficult to separate. Most investigations have been performed on diced mats and highly nonhomogenous composites. We examined the influence of dispersed electrospun single micro‐ and nanometer fibers on the mechanical properties of calcium phosphate cement composites. Absorbable poly‐l‐lactic‐acid was electrospun yielding fibers with diameters of 244 ± 78 nm, named nanofibers (NF), and 1.0 ± 0.3 μm, named microfibers (MF). These fibers were cut using a particle assisted ultrasonication process and dispersed with hydroxyapatite nanoparticles and composites of low (5%) and high (30%) NF/MF content were engineered. The homogeneity of the fiber distribution was investigated by analyzing fracture areas regarding the number of fibers and Voronoi area size distribution. Variation of fiber distribution was significantly lower in the NF group as compared to the MF group. For composites containing 5% NF (V/V), an eightfold increase in the compressive fracture strength, and for the 30% NF (V/V) a threefold increase compared was measured. The composite containing 5% NF was identified as optimal regarding fiber distribution and strength. Our new method of engineering these composites allows for high volume fractions of NF with low variation in fiber distribution to be incorporated into composites, and shows the importance of using single filaments as reinforcing agents.
Date Issued
2017
Publication Type
Article
Subject(s)
600 Technology > 610 Medicine & health
600 Technology > 620 Engineering
Language(s)
en
Author(s)
Mulky, Elias
Maniura-Weber, Katharina
Frenz, Martin  orcid-logo
Institut für angewandte Physik (IAP)  
Fortunato, Giuseppino
Luginbühl, Reto  
Department for BioMedical Research (DBMR)  
Additional Credits
Institut für angewandte Physik (IAP)  
Department for BioMedical Research (DBMR)  
Journal
Journal of biomedical materials research. Part A
Publisher
John Wiley & Sons
ISSN
1549-3296
Access(Rights)
restricted
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