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使用聚(碳酸丁二酯-共-对苯二甲酸酯)和有机改性层状苯基膦酸锌制备的可生物降解纳米复合材料的合成、物理性质及酶促降解

Synthesis, Physical Properties and Enzymatic Degradation of Biodegradable Nanocomposites Fabricated Using Poly(Butylene Carbonate-Co-Terephthalate) and Organically Modified Layered Zinc Phenylphosphonate.

作者信息

Tseng Li-Ying, Chen Erh-Chiang, Wang Jie-Mao, Wu Tzong-Ming

机构信息

Department of Materials Science and Engineering, National Chung Hsing University, 250 Kuo Kuang Road, Taichung 402, Taiwan.

出版信息

Polymers (Basel). 2020 Sep 21;12(9):2149. doi: 10.3390/polym12092149.

Abstract

A new biodegradable aliphatic-aromatic poly (butylene carbonate-co-terephthalate) (PBCT-85) with the molar ratio [BC]/[BT] = 85/15, successfully synthesized through transesterification and polycondensation processes, was identified using 1H-NMR spectra. Various weight ratios of PBCT/organically modified layered zinc phenylphosphonate (m-PPZn) nanocomposites were manufactured using the solution mixing process. Wide-angle X-ray diffraction and transmission electron microscopy were used to examine the morphology of PBCT-85/m-PPZn nanocomposites. Both results exhibited that the stacking layers of m-PPZn were intercalated into the PBCT-85 polymer matrix. The additional m-PPZn into PBCT-85 copolymer matrix significantly enhanced the storage modulus at -70 °C, as compared to that of neat PBCT-85. The lipase from was used to investigate the enzymatic degradation of PBCT-85/m-PPZn nanocomposites. The weight loss decreased as the loading of m-PPZn increased, indicating that the existence of m-PPZn inhibits the degradation of the PBCT-85 copolymers. This result might be attributed to the higher degree of contact angle for PBCT-85/m-PPZn nanocomposites. The PBCT-85/m-PPZn composites approved by MTT assay are appropriate for cell growth and might have potential in the application of biomedical materials.

摘要

通过酯交换和缩聚过程成功合成了一种新型的可生物降解的脂肪族-芳香族聚(碳酸丁二酯-共-对苯二甲酸酯)(PBCT-85),其摩尔比[BC]/[BT]=85/15,并用1H-NMR光谱对其进行了鉴定。采用溶液混合法制备了不同重量比的PBCT/有机改性层状苯基膦酸锌(m-PPZn)纳米复合材料。利用广角X射线衍射和透射电子显微镜对PBCT-85/m-PPZn纳米复合材料的形态进行了研究。结果均表明,m-PPZn的堆叠层插入到PBCT-85聚合物基体中。与纯PBCT-85相比,向PBCT-85共聚物基体中添加m-PPZn显著提高了-70℃下的储能模量。利用来自[具体来源未提及]的脂肪酶研究了PBCT-85/m-PPZn纳米复合材料的酶促降解。随着m-PPZn负载量的增加,失重减少,这表明m-PPZn的存在抑制了PBCT-85共聚物的降解。这一结果可能归因于PBCT-85/m-PPZn纳米复合材料具有更高的接触角。经MTT分析验证的PBCT-85/m-PPZn复合材料适合细胞生长,在生物医学材料应用中可能具有潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8f40/7570023/9af6f00029b4/polymers-12-02149-g001.jpg

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