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The preparation of nano-structured polymeric systems of polyurethane/polyimide blends.

机译:聚氨酯/聚酰亚胺共混物的纳米结构聚合物体系的制备。

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In this study, series of segmented polyurethane copolymers were synthesized and physically blended with semi-rigid polyimide {dollar}rm (Ultem1000sp{lcub}TM{rcub}){dollar} for the preparation of nano-structured systems. Information regarding the insight of the morphology and structure-property relationships of these systems were provided by applying transmission electron microscopy (TEM), small angle x-rays scattering (SAXS), dynamic mechanical analysis (DMA), Fourier transform infrared (FTIR) spectroscopy techniques and mechanical tensile testing. It was shown that nano-structured systems of polyurethane/polyimide blends can be successfully prepared by the dispersion of semi-rigid polyimide chains in the polyurethane matrix and the hydrogen bonding between them. It was also shown that the morphology and the resultant mechanical properties of these polyurethanes and their blends with PI were strongly dependent on the chemical nature of hard segments and the molecular weight of soft segments.; With TEM, all of the samples examined in this study exhibited two-phase morphology due to the chemical incompatibility between the hard and soft segments. Polyurethanes with lower molecular weight of soft segments (M.W. = 425 g/mole) and their blends with polyimide (PI) exhibited good dispersion of PI molecules in the polyurethane matrix. The dispersion of PI chains was attributed to the hydrogen bonds between the PI molecules and the hard segments of the polyurethanes. However, samples which possess higher molecular weight of soft segment (M.W. = 725 g/mole) behaved quite differently. A PI-rich phase was revealed by TEM. In fact, a PI-rich phase already existed for these samples and their blends with PI by showing a third relaxation peak in the study of DMA. The formation of the PI-rich phase was attributed to the less compatible environment of soft matrix for the dispersion of PI molecules.; Results from tensile testing revealed that nano-structured polyurethanes were successfully prepared by the systems of polyurethanes with lower molecular weight of soft segments. Results showed that the measured Young's moduli of these systems were beyond the predicted ones using the additive rule-of-mixtures and the modified Halpin-Tsai equations for particulate-filled, fiber-filled, and nano-structured systems. These systems also exhibited improvements in the strain at breaks (and also the toughness) as compared with the ones predicted by the model of Nielsen. On the other hand, the PI-rich phase acted as a particulate filler in the matrix of polyurethanes with higher molecular weight of soft segments and only showed moderate improvement in Young's moduli and strain at break.
机译:在这项研究中,合成了一系列嵌段聚氨酯共聚物,并与半刚性聚酰亚胺rm(Ultem1000sp {lcub} TM {rcub}){dol}进行物理共混,以制备纳米结构体系。通过应用透射电子显微镜(TEM),小角X射线散射(SAXS),动态力学分析(DMA),傅里叶变换红外(FTIR)光谱学,可以了解有关这些系统的形态和结构-性质关系的见解的信息。技术和机械拉伸测试。结果表明,通过将半刚性聚酰亚胺链分散在聚氨酯基体中以及它们之间的氢键,可以成功地制备聚氨酯/聚酰亚胺共混物的纳米结构体系。还表明这些聚氨酯及其与PI的共混物的形态和所得的机械性能在很大程度上取决于硬链段的化学性质和软链段的分子量。使用TEM,由于硬链段和软链段之间的化学不相容性,本研究中检查的所有样品均表现出两相形态。较低分子量的软链段的聚氨酯(分子量= 425克/摩尔)及其与聚酰亚胺(PI)的共混物表现出PI分子在聚氨酯基质中的良好分散性。 PI链的分散归因于PI分子和聚氨酯的硬链段之间的氢键。但是,具有较高软链段分子量(M.W. = 725 g / mol)的样品的行为却大不相同。 TEM显示富含PI的相。实际上,通过在DMA研究中显示第三个弛豫峰,这些样品及其与PI的共混物已经存在富含PI的相。富含PI的相的形成归因于软基质对PI分子分散的相容性较差的环境。拉伸试验的结果表明,通过具有较低软链段分子量的聚氨酯体系成功制备了纳米结构聚氨酯​​。结果表明,使用加法混合法则和改进的Halpin-Tsai方程对颗粒填充,纤维填充和纳米结构系统的测量,这些系统的杨氏模量超出了预测值。与Nielsen模型所预测的相比,这些系统的断裂应变(以及韧性)也有所提高。另一方面,富含PI的相在具有较高软链段分子量的聚氨酯基质中充当颗粒状填料,并且仅显示出杨氏模量和断裂应变的适度改善。

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