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Preparation and characterization of high-strength elastomers with high poly(trifluoropropylmethyl)siloxane content into polyurethane urea

机译:聚氨酯脲中具有高聚三氟丙基甲基硅氧烷含量的高强度弹性体的制备和表征

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A series of poly(trifluoropropylmethyl)siloxane-block-polyurethane urea (PUUFS) films containing over 30 wt% poly(trifluoropropylmethyl)siloxane (PFS) were prepared via the three-step process that the prepolymer was synthesized from poly(tetramethylene oxide) (PTMO) and toluene diisocyanate (TDI), chain-extended with α,ω-bis(3-aminopropyldiethoxylsilane) poly(trifluoropropylmethyl)siloxane (APFS), and then with 3,3′-dichloro-4, 4′-diaminodiphenylmethane (DDDPM). The films were formed through moisture curing and they were characterized using Fourier transform infrared spectroscopy, differential scanning calorimetry, scanning electron microscopy, X-ray Diffraction, dynamic mechanical analysis, thermogravimetric analysis, mechanical testing, and so on. The influence of the concentration ratios between hard and soft segments (C_(HS)/C_(SS)) on the microstructure and properties of the materials was investigated. Higher crosslink densities or extent of hydrogen bonding that result from higher hard segment concentrations enhanced the mechanical properties of the materials. The extent of the phase separation of materials initially decreased and then increased as the C _(HS)/C_(SS) elevated from 1.85 to 4.13. The material with a C_(HS)/C_(SS) of 3.01 exhibited the lowest phase separation and the highest crystallinity and tensile strength. In addition, the trend of the surface properties of the materials was similar to the change in tensile strength and associated with phase separation, hydrogen bonding, and crosslinkage. Moreover, the copolymer may have practical applications in coatings and adhesions.
机译:通过三步法制备一系列由三聚环氧丙烷合成预聚物的聚三氟丙基甲基硅氧烷嵌段聚氨酯尿素(PUUFS)薄膜,其中聚三氟丙基甲基硅氧烷含量超过30%(PFS)( PTMO)和甲苯二异氰酸酯(TDI),先与α,ω-双(3-氨基丙基二乙氧基硅烷)聚(三氟丙基甲基)硅氧烷(APFS)扩链,然后与3,3'-dichloro-4,4'-diaminodiphenylmethane(DDDPM)扩链)。通过湿固化形成膜,并使用傅里叶变换红外光谱,差示扫描量热法,扫描电子显微镜,X射线衍射,动态力学分析,热重分析,力学测试等对膜进行表征。研究了硬链段和软链段之间的浓度比(C_(HS)/ C_(SS))对材料的微观结构和性能的影响。由较高的硬链段浓度引起的较高的交联密度或氢键的程度增强了材料的机械性能。随着C_(HS)/ C_(SS)从1.85升高到4.13,材料的相分离程度开始减小,然后增加。 C_(HS)/ C_(SS)为3.01的材料表现出最低的相分离以及最高的结晶度和拉伸强度。此外,材料表面性能的趋势类似于抗张强度的变化,并且与相分离,氢键和交联有关。而且,该共聚物可以在涂料和粘合中具有实际应用。

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