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Poly(ε-caprolactone)/graphene oxide biocomposites: Mechanical properties and bioactivity

机译:聚(ε-己内酯)/氧化石墨烯生物复合材料:力学性能和生物活性

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摘要

Biomedical applications of graphene have recently attracted intensive attention, with graphene-based nanomaterials being reported as promising candidates in, for example, drug delivery, biosensing and bioimaging. In this paper, mechanical properties and bioactivity of nanofibrous and porous membranes electrospun from graphene oxide (GO) nanoplatelets reinforced poly(ε-caprolactone) (PCL) were investigated. The results showed that the presence of 0.3 wt% GO increased the tensile strength, modulus and energy at break of the PCL membrane by 95%, 66% and 416%, respectively, while improving its bioactivity during biomineralization and maintaining the high porosity of over 94%. The mechanical enhancements were ascribed to the change in the fiber morphology and the reinforcing effect of GO on PCL nanofibers, whereas the improvements on the bioactivity stemmed from the anionic functional groups present on the GO surface that nucleated the formation of biominerals. Systematic studies on the PCL/GO nanocomposite films with varying GO concentrations revealed that the reinforcing effect of GO on PCL was due to the strong interfacial interactions between the two phases characterized by Fourier transform infrared spectroscopy, the good dispersion of GO in the matrix and the intrinsic properties of GO nanoplatelets. The strong and bioactive PCL/GO nanofibrous membranes with a high porosity have great potential for biomedical applications.
机译:石墨烯的生物医学应用近来引起了广泛关注,据报道基于石墨烯的纳米材料在例如药物递送,生物传感和生物成像中是有希望的候选者。本文研究了由氧化石墨烯(GO)纳米片增强的聚(ε-己内酯)(PCL)纺制的纳米纤维和多孔膜的力学性能和生物活性。结果表明,存在0.3 wt%的GO可使PCL膜的抗张强度,模量和断裂能分别增加95%,66%和416%,同时在生物矿化过程中改善其生物活性并保持高孔隙率。 94%。机械增强归因于纤维形态的变化和GO对PCL纳米纤维的增强作用,而对生物活性的改善归因于GO表面上存在的阴离子官能团,该阴离子官能团使生物矿物的形成成核。对具有不同GO浓度的PCL / GO纳米复合膜的系统研究表明,GO对PCL的增强作用是由于以傅里叶变换红外光谱为特征的两相之间的强界面相互作用,GO在基质中的良好分散以及GO纳米片的固有性质。具有高孔隙率的坚固且具有生物活性的PCL / GO纳米纤维膜具有巨大的生物医学应用潜力。

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