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利用废咖啡渣作为炭化剂制备具有良好韧性的阻燃聚乳酸复合材料。

Utilization of spent coffee grounds as charring agent to prepare flame retardant poly(lactic acid) composites with improved toughness.

机构信息

School of Materials Science and Engineering, Shenyang University of Chemical Technology, Shenyang 110142, Liaoning Province, China; Key Laboratory of Bio-based Polymeric Materials Technology and Application of Zhejiang Province, Laboratory of Polymers and Composites, Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo 315201, Zhejiang Province, China.

Key Laboratory of Bio-based Polymeric Materials Technology and Application of Zhejiang Province, Laboratory of Polymers and Composites, Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo 315201, Zhejiang Province, China.

出版信息

Int J Biol Macromol. 2024 Apr;264(Pt 1):130534. doi: 10.1016/j.ijbiomac.2024.130534. Epub 2024 Mar 2.

Abstract

The objective was to utilize spent coffee grounds (SCG) as charring agent to combine with ammonium polyphosphate (APP) to prepare flame retardant poly(lactic acid) (PLA) composites with improved toughness. PLA/APP-SCG and PLA/APP-SCG/KH560 composites were prepared, and silane coupling agent KH560 was applied to improve particle-matrix interfacial compatibility. The particle-matrix interface, char formation, flame retardancy, mechanical properties and fracture morphology of PLA composites were studied. Results showed that PLA/APP-SCG5% and PLA/APP-SCG20% passed UL-94 V-0 rating, and increase in charred residues was favorable for improving flame retardancy. Improved toughness was also obtained compared to PLA, attributed to debonding of APP from matrix under external force as well as plasticization effect of coffee oil contained in SCG. PLA/APP-SCG5%/KH560 and PLA/APP-SCG20%/KH560 showed smaller elongation at break and impact strength compared to PLA/APP-SCG5% and PLA/APP-SCG20%, respectively. The improved interfacial compatibility was unfavorable for debonding of APP from matrix, and both APP and SCG played the role of enhancing strength, thus decreasing toughness. PLA/APP-SCG/KH560 counterparts were actually set as parallel samples to prove that PLA/APP-SCG composites showed improved toughness with weak interfacial compatibility. This study has provided a practical approach to utilize bio-derived wastes as charring agent to prepare flame retardant PLA composites with enhanced toughness.

摘要

本研究旨在利用废咖啡渣(SCG)作为炭化剂,与聚磷酸铵(APP)结合,制备韧性得到改善的阻燃聚乳酸(PLA)复合材料。制备了 PLA/APP-SCG 和 PLA/APP-SCG/KH560 复合材料,并应用硅烷偶联剂 KH560 来改善颗粒-基体界面相容性。研究了 PLA 复合材料的颗粒-基体界面、炭化形成、阻燃性、力学性能和断裂形貌。结果表明,当添加 5%和 20%的 SCG 时,PLA/APP-SCG 复合材料通过 UL-94 V-0 等级测试,增加炭残留物有利于提高阻燃性。与 PLA 相比,复合材料的韧性也得到了提高,这归因于外力作用下 APP 从基体中脱粘以及 SCG 中所含咖啡油的增塑作用。与 PLA/APP-SCG5%和 PLA/APP-SCG20%相比,PLA/APP-SCG5%/KH560 和 PLA/APP-SCG20%/KH560 的断裂伸长率和冲击强度更小。界面相容性的提高不利于 APP 从基体中脱粘,且 APP 和 SCG 均起到增强强度的作用,从而降低了韧性。PLA/APP-SCG/KH560 复合材料作为平行样来证明 PLA/APP-SCG 复合材料具有增强的韧性和较弱的界面相容性。本研究为利用生物衍生废物作为炭化剂制备具有增强韧性的阻燃 PLA 复合材料提供了一种实用方法。

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