首页> 外文期刊>Applied Surface Science >Imaging,spectroscopic,mechanical and biocompatibility studies of electrospun Tecoflex~® EG 80A nanofibers and composites thereof containing multiwalled carbon nanotubes
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Imaging,spectroscopic,mechanical and biocompatibility studies of electrospun Tecoflex~® EG 80A nanofibers and composites thereof containing multiwalled carbon nanotubes

机译:含多壁碳纳米管的电纺Tecoflex〜EG 80A纳米纤维及其复合材料的成像,光谱,力学和生物相容性研究

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摘要

The present study discusses the design, development, and characterization of electrospun Tecoflex~® EG 80A class of polyurethane nanofibers and the incorporation of multiwalled carbon nanotubes (MWCNTs) to these materials. Scanning electron microscopy results confirmed the presence of polymer nanofibers, which showed a decrease in fiber diameter at 0.5% wt. and 1% wt. MWCNTs loadings, while transmission electron microscopy showed evidence of the MWCNTs embedded within the polymer matrix. The Fourier transform infrared spectroscopy and Raman spectroscopy were used to elucidate the polymer-MWCNTs intermolecular interactions, indicating that the C-N and N-H bonds in polyurethanes are responsible for the interactions with MWCNTs. Furthermore, tensile testing indicated an increase in the Young's modulus of the nanofibers as the MWCNTs concentration was increased. Finally, NIH 3T3 fibroblasts were seeded on the obtained nanofibers, demonstrating cell biocompatibility and proliferation. Therefore, the results indicate the successful formation of polyurethane nanofibers with enhanced mechanical properties, and demonstrate their biocompatibility, suggesting their potential application in biomedical areas.
机译:本研究讨论了电纺Tecoflex〜EG 80A类聚氨酯纳米纤维的设计,开发和表征,以及将多壁碳纳米管(MWCNT)结合到这些材料中的方法。扫描电子显微镜结果证实了聚合物纳米纤维的存在,其显示出在0.5重量%时纤维直径的减小。和1%重量。 MWCNTs的负载,而透射电子显微镜显示了MWCNTs嵌入聚合物基质中的证据。傅里叶变换红外光谱和拉曼光谱用于阐明聚合物-MWCNTs的分子间相互作用,表明聚氨酯中的C-N和N-H键是与MWCNTs相互作用的原因。此外,拉伸试验表明,随着MWCNTs浓度的增加,纳米纤维的杨氏模量增加。最后,将NIH 3T3成纤维细胞接种到获得的纳米纤维上,证明细胞生物相容性和增殖。因此,结果表明成功地形成了具有增强的机械性能的聚氨酯纳米纤维,并证明了它们的生物相容性,表明它们在生物医学领域的潜在应用。

著录项

  • 来源
    《Applied Surface Science》 |2014年第1期|205-213|共9页
  • 作者单位

    Department of Chemistry, University of Texas-Pan American, Edinburg TX 78539, USA;

    Department of Chemistry, University of Texas-Pan American, Edinburg TX 78539, USA, Nano-Bio Regenerative Medical Institute, College of Medicine, Hallym University, Chuncheon 200-702, South Korea;

    Department of Chemistry, University of Texas-Pan American, Edinburg TX 78539, USA;

    Department of Chemistry, University of Texas-Pan American, Edinburg TX 78539, USA;

    Department of Chemistry, University of Texas-Pan American, Edinburg TX 78539, USA;

    Department of Chemistry, University of Texas-Pan American, Edinburg TX 78539, USA;

    Department of Chemistry, University of Texas-Pan American, Edinburg TX 78539, USA;

    Department of Organic Materials and Fiber Engineering, Chonbuk National University, Jeonju 561-756, South Korea;

    Department of Organic Materials and Fiber Engineering, Chonbuk National University, Jeonju 561-756, South Korea;

    Regional Academic Health Center-Edinburg (E-RAHC), Medical Research Division, 1214 W. Schunior St, Edinburg TX 78541USA, Department of Molecular Medicine, University of Texas Health Science Center, 15355 Lambda San Antonio TX 78245USA;

    Energy and Environment Fusion Technology Center, Department of Energy and Biotechnology, Myongji University, Yongin Kyonggi-do 449-728, Republic of Korea;

    Department of Biomedical Engineering, The University of Memphis, Memphis TN 38152, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Nanofibers; Electrospinning; Nanotechnology; Tissue engineering; Fibroblasts; Multiwalled carbon nanotubes;

    机译:纳米纤维;电纺;纳米技术;组织工程;成纤维细胞;多壁碳纳米管;

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