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首页> 外文期刊>Colloids and Surfaces, A. Physicochemical and Engineering Aspects >Surface modification and disaggregation of detonation nanodiamond particles with biodegradable polyurethane
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Surface modification and disaggregation of detonation nanodiamond particles with biodegradable polyurethane

机译:可生物降解聚氨酯爆轰纳米金刚石颗粒的表面改性及分解

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摘要

Nanodiamond(ND) is one of the most important carbon nanomaterials, which not only has the distinguishing feature of fundamental nanoparticles but also has intrinsic characteristics of diamond. Depending on its extraordinary properties, such as good biocompatibility, low toxicity and mechanical behavior, ND thus has been widely used in a variety of fields. However, pristine ND easily tends to aggregate in the form of micro-sized clusters. Therefore, two different approaches for surface modification of ND with biodegradable polyurethane by chemical of grafting-to and grafting-from are presented herein. The Fourier transform infrared spectroscopy (FT-IR) and thermogravimetric analyses (TGA) reveal that polyurethane has been covalently attached to ND surface, and the weight loss is 3.51% and 3.23%, which is equivalent to the grafted rate. Dynamic light scattering, transmission electron microscopic (TEM) and natural sedimentation experiment all demonstrate that modified ND with long PU chains can well disperse in organic solvents and CCD images (Charge Coupled Device Images) illustrate that modified ND render hydrophilic pristine ND good hydrophobic behavior. So ND functionalized with polyurethane broadens a new prospect of application in biomedical science. It is suggested that the polyurethane macromolecules covalently bonded onto the agglomerate surface play an important role on the colloidal stability against aggregation.
机译:纳米金刚胺(ND)是最重要的碳纳米材料之一,其不仅具有基础纳米粒子的显着特征,而且还具有金刚石的内在特征。根据其非凡的性质,例如良好的生物相容性,低毒性和机械行为,因此已广泛用于各种领域。然而,原始ND容易倾向于以微尺寸簇的形式聚集。因此,本文介绍了通过嫁接和接枝的化学物质与可生物降解的聚氨酯的两种不同方法。傅里叶变换红外光谱(FT-IR)和热重分析(TGA)揭示了聚氨酯已共价连接到Nd表面,重量损失为3.51%和3.23%,这相当于接枝率。动态光散射,透射电子显微镜(TEM)和天然沉降实验均证明具有长PU链的改性ND可以在有机溶剂和CCD图像(电荷耦合器件图像)中分散,说明改进的Nd呈亲水性原始ND良好的疏水性行为。因此,用聚氨酯官能化的ND拓宽了生物医学科学申请的新前景。建议将共价键合到聚集表面上的聚氨酯大分子在对聚集的胶体稳定性上起重要作用。

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