Mangesh Nar
University of North Texas
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Publication
Featured researches published by Mangesh Nar.
Materials Science and Engineering: C | 2014
Mangesh Nar; Gerrit Staufenberg; Bing Yang; Lesli Robertson; Rinkesh H. Patel; Venu G. Varanasi; Nandika Anne D'Souza
Poly(butylene adipate-co-terephthalate) (PBAT) and Poly(hydroxybutyrate-co-hydroxyvalerate) (PHBV) are biopolymers that have the potential to be used in applications of bone healing. In this study, it is hypothesized that the polymer blend has the combined strength and osteoconductivity to support osteoblast collagen formation. PBAT (PBAT 100), and a blend with 20% PHBV (PBAT 80) were extruded in the form of fibers and then knitted in the form of mesh. These were tested in the warp as well as weft direction for the tensile properties; these showed that the weft direction had higher performance than the warp. The individual fibers were kept in phosphate buffered saline (PBS) over the period of 8 weeks and were tested for the storage and loss modulus using a dynamic mechanical analyser (DMA). The results indicated that mechanical relaxation strength showed a decrease and then an increase. In vitro osteoconductivity studies were done by using differentiating osteoblasts (MC3T3-E1 subclone 4 cells). Environmental Scanning Electron Microscopy (ESEM) showed that pre-soaking the samples in α-MEM for two weeks resulted in cell attachment and growth. X-ray diffraction (XRD) was used to determine the change in structure of polymers due to in vitro degradation for two weeks. Raman spectroscopy showed that all scaffolds supported the formation of a collagenous network over the scaffold surfaces. For a combination of knittable manufacturing, mechanical performance and osteoconductivity, blends offer an effective route.
Cellular Polymers | 2011
Emmanuel Ogunsona; Sonny Ogbomo; Mangesh Nar; Nandika Anne D'Souza
Nanocomposite polystyrene (PS) foams based on montmorillonite layered silicate (MLS) as nanofillers were prepared using in-situ polymerization of styrene. These nanocomposites were characterized for their thermal and mechanical properties using differential scanning calorimetry (DSC), x-ray diffraction (XRD), dynamic mechanical analyzer (DMA) and scanning electron microscope (SEM). Foamed sample microscopy revealed that the cell size reduced with the increasing amount of nanofiller. The mechanical properties showed a significant increase.
Journal of Cleaner Production | 2014
Seyed Mostafa Batouli; Yimin Zhu; Mangesh Nar; Nandika Anne D'Souza
Materials Chemistry and Physics | 2012
Vallerie DeLeon; Thanh D. Nguyen; Mangesh Nar; Nandika Anne D'Souza; Teresa D. Golden
Surface & Coatings Technology | 2014
Yahia H. Ahmad; Jeerapan Tientong; Mangesh Nar; Nandika Anne D'Souza; A.M.A. Mohamed; Teresa D. Golden
Carbon | 2016
Mangesh Nar; Hussain R. Rizvi; Richard A. Dixon; Fang Chen; Adriana Kovalcik; Nandika Anne D'Souza
Composites Part B-engineering | 2014
Bing Yang; Mangesh Nar; David K. Visi; Michael S. Allen; Brian G. Ayre; Charles L. Webber; Hongbing Lu; Nandika D’Souza
Materials Chemistry and Physics | 2014
Jeerapan Tientong; Yahia H. Ahmad; Mangesh Nar; Nandika Anne D'Souza; Adel Mohamed; Teresa D. Golden
Polymer Engineering and Science | 2015
Mangesh Nar; Charles L. Webber; Nandika Anne D'Souza
Archive | 2015
Richard A. Dixon; Nandika Anne D'Souza; Fang Chen; Mangesh Nar