首页> 外文期刊>ACS applied materials & interfaces >Synthesis of Polycaprolactone-Grafted Microfibrillated Cellulose for Use in Novel Bionanocomposites-lnfluence of the Graft Length on the Mechanical Properties
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Synthesis of Polycaprolactone-Grafted Microfibrillated Cellulose for Use in Novel Bionanocomposites-lnfluence of the Graft Length on the Mechanical Properties

机译:用于新型Bionanocomposites的聚己内酯接枝的微纤化纤维素的合成-接枝长度对机械性能的影响

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In the present work, microfibrillated cellulose (MFC) made from bleached sulfite softwood dissolving pulp was utilized to reinforce a poly(£-caprolactone) (PCL) biopolymer matrix. To improve the dispersibility of the hydrophilic MFC in the nonpolar matrix and the interfacial adhesion in the composite material, we covalently grafted the MFC with PCL via ring-opening polymerization (ROP) of ε-caprolactone (ε-CL). To be able to investigate the effect of the PCL graft length on the mechanical properties of the composite material, we performed ROP to different molecular weights of the grafts. Bionanocomposites containing 0, 3, and 10 wt % MFC were prepared via hot pressing using both unmodified and PCL grafted MFC (MFC-g-PCL) as reinforcement. PCL grafting resulted in improved dispersion of the MFC in a nonpolar solvent and in the PCL matrix. The mechanical testing of the biocomposites showed an improvement in the mechanical properties for the PCL grafted MFC in comparison to ungrafted MFC. It was also shown that there was an impact on the mechanical properties with respect to the PCL graft lengths, and the strongest biocomposites were obtained after reinforcement with MFC grafted with the longest PCL graft length.
机译:在本工作中,由漂白亚硫酸盐软木溶解浆制成的微纤化纤维素(MFC)用于增强聚(ε-己内酯)(PCL)生物聚合物基质。为了提高亲水性MFC在非极性基质中的分散性和复合材料中的界面粘合性,我们通过ε-己内酯(ε-CL)的开环聚合(ROP)将MFC与PCL共价接枝。为了能够研究PCL接枝长度对复合材料机械性能的影响,我们对接枝物的不同分子量进行了ROP。使用未改性的和PCL接枝的MFC(MFC-g-PCL)作为增强剂,通过热压制备含有0、3和10 wt%MFC的Bionanocomposites。 PCL接枝可改善MFC在非极性溶剂和PCL基质中的分散性。生物复合材料的机械测试表明,与未接枝的MFC相比,PCL接枝的MFC的机械性能有所改善。还表明,相对于PCL接枝长度,对机械性能有影响,在用PCL接枝长度最长的MFC增强后,可获得最强的生物复合材料。

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