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Preparation of synergistically reinforced transparent bio-polycarbonate nanocomposites with highly dispersed cellulose nanocrystals

机译:具有高度分散的纤维素纳米晶体的协同增强透明生物聚碳酸酯纳米复合材料的制备

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摘要

Polycarbonate (PC) is a transparent polymeric material which can replace shattering glass, but bisphenol-A, used for improving its properties, has controversial hazards. An alternative biomass-derived isosorbide (ISB)-based PC can be used owing to its complementary properties. To satisfy the two factors of sustainability and performance simultaneously, this paper proposes the in situ polymerization of ISB pre-dispersed with cellulose nanocrystals (CNCs), which directly produces PC nanocomposites, as a facile method for achieving record-high mechanical strength among all types of PCs and their nanocomposites. The proposed nanocomposite is more transparent, exhibits an ultimate tensile strength of 93 MPa and a 4.3-fold increased toughness of 40 MJ m(-3), compared to a homo-polymer, and is better than post-blended nanocomposites due to the excellent dispersibility of 0.3 wt% nanofiller. Formidable improvements in in situ PC/CNC nanocomposites originate from the simultaneous contributions of covalent and physical interactions through polymeric grafting on the CNC surface and hydrogen bonding with a polar ISB moiety of PC, in advance, from the monomer dispersion, respectively, enhancing the interfacial interaction with the polymer matrix. This in situ approach opens new possibilities in the field of sustainable plastic industries.
机译:聚碳酸酯(PC)是一种透明的聚合物材料,可以代替破碎的玻璃,但是用于改善其性质的双酚-A具有争议的危险。由于其互补性,可以使用替代的生物质衍生的异山梨醇(ISB)的PC。为了同时满足可持续性和性能的两个因素,本文提出了预先分散的ISB的原位聚合,其直接产生PC纳米复合材料,作为实现所有类型中的记录高机械强度的容易方法PC和纳米复合材料。与均聚合物相比,所提出的纳米复合材料更透明,表现出93MPa的最终拉伸强度和4.3倍的韧性为40mJ m(-3),并且由于优异而优于混合后纳米复合材料优于混合后纳米复合材料0.3wt%纳米填料的分散性。在原位PC / CNC纳米复合材料中的突出性改进源自通过CNC表面上的聚合物接枝和与PC的极性ISB部分的聚合物接枝同时贡献,预先从单体分散体中提高界面与聚合物基质相互作用。这种原位方法在可持续塑料行业领域开辟了新的可能性。

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