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纤维素和纤维素纳米晶体含量对分级聚乳酸生物复合材料在堆肥条件下生物降解的影响

Effect of Cellulose and Cellulose Nanocrystal Contents on the Biodegradation, under Composting Conditions, of Hierarchical PLA Biocomposites.

作者信息

Galera Manzano Luciano Miguel, Ruz Cruz Miguel Ángel, Moo Tun Nora Magally, Valadez González Alex, Mina Hernandez José Herminsul

机构信息

Unidad de Materiales, Centro de Investigación Científica de Yucatán, A.C., Calle 43 #. No 130, Col. Chuburná de Hidalgo, Mérida 97205, Yucatán, Mexico.

Grupo Materiales Compuestos, Universidad del Valle, Calle 13 No. 100-00, Cali 76001, Colombia.

出版信息

Polymers (Basel). 2021 Jun 2;13(11):1855. doi: 10.3390/polym13111855.

Abstract

In this work, the effect of microfibrillated cellulose (MFC) and cellulose nanocrystals (CNCs) on the biodegradation, under composting conditions, of hierarchical PLA biocomposites (HBCs) was studied using a full 2 factorial experimental design. The HBCs were prepared by extrusion processing and were composted for 180 days. At certain time intervals, the specimens were removed from the compost for their chemical, thermal and morphological characterizations. An ANOVA analysis was carried out at different composting times to study MFC and CNCs' effects on biodegradation. The specimen's mass loss and molecular weight loss were selected as independent variables. The results show that the presence of MFC enhances the PLA biodegradation, while with CNCs it decreases. However, when both cellulosic fibers are present, a synergistic effect was evident-i.e., in the presence of the MFC, the inclusion of the CNCs accelerates the HBCs biodegradation. Analysis of the ANOVA results confirms the relevance of the synergistic role between both cellulosic fibers over the HBC biodegradation under composting conditions. The results also suggest that during the first 90 days of incubation, the hydrolytic PLA degradation prevails, whereas, beyond that, the enzymatic microbial biodegradation dominates. The SEM results show MFC's presence enhances the surface biodeterioration to a greater extent than the CNCs and that their simultaneous presence enhances PLA biodegradation. The SEM results also indicate that the biodegradation process begins from hydrophilic cellulosic fibers and promotes PLA biodegradation.

摘要

在这项工作中,使用全因子实验设计研究了微纤化纤维素(MFC)和纤维素纳米晶体(CNC)对堆肥条件下分层聚乳酸生物复合材料(HBC)生物降解的影响。HBC通过挤出工艺制备,并进行了180天的堆肥处理。在特定时间间隔,从堆肥中取出试样进行化学、热学和形态学表征。在不同堆肥时间进行方差分析,以研究MFC和CNC对生物降解的影响。选择试样的质量损失和分子量损失作为自变量。结果表明,MFC的存在促进了聚乳酸的生物降解,而CNC的存在则降低了生物降解。然而,当两种纤维素纤维都存在时,协同效应明显——即在MFC存在的情况下,加入CNC会加速HBC的生物降解。对方差分析结果的分析证实了两种纤维素纤维之间的协同作用对堆肥条件下HBC生物降解的相关性。结果还表明,在孵化的前90天,水解聚乳酸降解占主导,而在此之后,酶促微生物生物降解占主导。扫描电子显微镜结果表明,MFC的存在比CNC更能促进表面生物劣化,并且它们的同时存在促进了聚乳酸的生物降解。扫描电子显微镜结果还表明,生物降解过程从亲水性纤维素纤维开始,并促进聚乳酸的生物降解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e131/8199790/45157b106ab9/polymers-13-01855-g001.jpg

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