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Properties and degradation of castor oil-based fluoridated biopolyurethanes with different lengths of fluorinated segments

机译:不同长度氟化片段的蓖麻油基氟化生物聚氨酯的性能和降解

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摘要

To develop a durable, biodegradable polymer, this study successfully synthesized a castor-oil-based prepolymer by using methylene diphenyl diisocyanate as a hard segment, polycaprolactone as a soft segment, and castor oil as a functional monomer. We added perfluorinated alkyl segments with varying chain lengths into the castor-oil-based polymer to synthesize castor-oil-based fluoridated biopolyurethanes (FCOPUs) with different fluorinated segment lengths. The castor-oil-based polyurethanes with different fluorinated segment lengths had similar molecular weights, which enabled accurate analysis of the effect of the lengths of fluorinated segments on FCOPUs. Nuclear magnetic resonance (NMR) was used to perform ~(1) H NMR, ~(19) F NMR, ~(19) F– ~(19) F COSY, ~(1) H– ~(19) F COSY, and HMBC analyses on the FCOPU structures. The results of Fourier transform infrared spectroscopy and X-ray photoelectron spectroscopy curve fitting verified the interaction between C–F?H–N and C–F?CO. This interaction increased as the fluorinated segments became longer. Regarding the thermal properties of the FCOPUs, the thermogravimetric analysis, differential scanning calorimetry, and dynamic mechanical analysis results revealed that long fluorinated segments were associated with increased thermal stability in the FCOPUs. The atomic force microscopy and tensile strength test suggested that long fluorinated segments contained in the FCOPUs increased the degree of phase separation and tensile strength in FCOPUs. Finally, we dipped the FCOPUs in a 3 wt% NaOH solution, calculated the weight loss of the FCOPUs, and observed their surface structure by using scanning electron microscopy.
机译:为了开发一种耐用的,可生物降解的聚合物,这项研究成功地通过使用亚甲基二苯基二异氰酸酯作为硬链段,聚己内酯作为软链段以及蓖麻油作为功能性单体合成了基于蓖麻油的预聚物。我们将不同链长的全氟化烷基链段添加到蓖麻油基聚合物中,以合成具有不同氟化链段长度的蓖麻油基氟化生物聚氨酯(FCOPU)。具有不同氟化链段长度的蓖麻油基聚氨酯具有相似的分子量,这使得能够精确分析氟化链段长度对FCOPU的影响。核磁共振(NMR)用于执行〜(1)H NMR,〜(19)F NMR,〜(19)F–〜(19)F COSY,〜(1)H–〜(19)F COSY, HMBC对FCOPU结构进行了分析。傅里叶变换红外光谱和X射线光电子能谱曲线拟合的结果验证了C–F?H–N和C–F?CO之间的相互作用。随着氟化链段变长,这种相互作用增加。关于FCOPU的热性能,热重分析,差示扫描量热法和动态力学分析结果表明,较长的氟化链段与FCOPU中的热稳定性增加相关。原子力显微镜和抗张强度测试表明,FCOPU中包含的长氟化链段增加了FCOPU中的相分离度和抗张强度。最后,我们将FCOPUs浸入3 wt%的NaOH溶液中,计算出FCOPUs的重量损失,并使用扫描电子显微镜观察其表面结构。

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