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Nanocomposites with shape memory behavior based on a segmented polyurethane and magnetic nanostructures

机译:基于分段聚氨酯和磁性纳米结构的形状存储器行为纳米复合材料

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摘要

Shape-memory composites based on a commercial segmented polyurethane and magnetite (Fe3O4) nanoparticles (NPs) were prepared by a simple suspension casting method. The properties of the resulting nanocomposites, containing 1 to 10 nominal wt.% magnetic particles, were evaluated by thermogravimetric tests, contact angle measurements, differential scanning calorimetry, infrared and X-ray spectroscopy, static and thermal cyclic tensile tests, dynamic mechanical analysis and experiments of alternating-magnetic-field heating. It was found that most of the suspended NPs could be successfully incorporated into the polyurethane matrix, and thus composite samples with up to 7 wt.% actual concentration were obtained. On the other hand, the incorporation of magnetite nanoparticles to the shape memory polyurethane did not significantly affect most of the matrix properties, including its shape memory behavior, while added magnetic response to the nanocomposites. Thus, nanocomposites were able to increase their temperature when exposed to an alternating magnetic field, which allowed them to recover their original shape quickly by an indirect triggering method.
机译:通过简单的悬浮浇铸方法制备基于商业分段聚氨酯和磁铁矿(Fe3O4)纳米颗粒(NPS)的形状记忆复合材料。通过热量标记试验,接触角测量,差示扫描量热法,红外线和X射线光谱,静态和热循环拉伸试验,静态和热循环拉伸试验,动态机械分析和耐热循环拉伸试验,测定所得纳米核复合物的性质。交替磁场加热的实验。发现大多数悬浮的NPS可以成功地掺入聚氨酯基质中,因此具有高达7重量%的复合样品。获得实际浓度%。另一方面,将磁铁矿纳米颗粒的掺入形状记忆聚氨酯没有显着影响大部分基质性质,包括其形状存储器行为,同时添加到纳米复合材料的磁响应。因此,当暴露于交替磁场时,纳米复合材料能够提高其温度,这使得它们通过间接触发方法快速地恢复它们的原始形状。

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