Enhanced performance and reprocessability in polypropylene-lignin blends through plasma treatment

IF 20.2 Q1 MATERIALS SCIENCE, PAPER & WOOD
Emanuela Bellinetto , Sofia Regoli , Ruggero Barni , Carmen Canevali , Oussama Boumezgane , Luca Zoia , Claudia Riccardi , Stefano Turri , Gianmarco Griffini
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Abstract

In this work, a new compatibilization strategy for polypropylene-lignin blends was presented, which did not rely on the use of solvents or other chemicals. Soda lignin was subjected to plasma treatment in an argon atmosphere employing a gliding-arc-tornado reactor configuration. The effect of this process was evaluated using electron paramagnetic resonance spectroscopy, nuclear magnetic resonance spectroscopy, differential scanning calorimetry, and thermogravimetric analysis, evidencing significant chemical-structural modifications in lignin, including an increased concentration of phenoxy radicals (60%) and depletion of hydroxyl functionalities (35%). Polypropylene-lignin blends incorporating 5% (w/w), 10% (w/w), and 20% (w/w) of either pristine or plasma-treated lignin were then prepared by melt-blending in a twin-screw extruder, and their thermo-mechanical and rheological properties were investigated in detail. As a result of the plasma-induced modifications occurred in lignin, blends incorporating the plasma-treated material exhibited greater thermo-oxidative stability, more favorable viscoelastic response, significantly improved mechanical performance (137% and 294% strain at break for polypropylene (PP) containing 5% (w/w) and 10% (w/w) of treated lignin, respectively), and enhanced thermo-mechanical reprocessability (> 95% retention of yield strength and strain at break after re-extrusion). This work provided the first demonstration of the effectiveness of plasma treatment as a viable and sustainable strategy to improve filler-matrix interactions in polypropylene-lignin blends without the use of solvents, chemical compatibilizers or additional wet-chemistry steps, paving the way for the development of lignin-based thermoplastic polyolefin materials with enhanced thermo-mechanical characteristics and improved reprocessability.
等离子体处理提高聚丙烯-木质素共混物的性能和可再加工性
本文提出了一种新的聚丙烯-木质素共混物增容策略,该策略不依赖于溶剂或其他化学品的使用。采用滑弧-龙卷风反应器结构,在氩气气氛中对碱木质素进行等离子体处理。利用电子顺磁共振波谱、核磁共振波谱、差示扫描量热法和热重分析对这一过程的影响进行了评估,证明木质素中的化学结构发生了重大变化,包括苯氧自由基浓度增加(60%)和羟基官能团的消耗(35%)。然后在双螺杆挤出机中通过熔融共混制备了含有5% (w/w), 10% (w/w)和20% (w/w)原始木质素或等离子体处理木质素的聚丙烯-木质素共混物,并详细研究了它们的热力学和流变性能。由于等离子体诱导木质素发生了修饰,含有等离子体处理材料的共混物表现出更好的热氧化稳定性,更有利的粘弹性响应,显著改善了机械性能(聚丙烯(PP)分别含有5% (w/w)和10% (w/w)处理木质素的断裂应变分别为137%和294%),并增强了热机械再加工性(>;再挤压后的屈服强度和断裂应变保持率为95%)。这项工作首次证明了等离子体处理作为一种可行和可持续的策略的有效性,可以在不使用溶剂、化学增容剂或额外的湿化学步骤的情况下改善聚丙烯-木质素共混物中的填料-基质相互作用,为木质素基热塑性聚烯烃材料的开发铺平了道路,这些材料具有增强的热机械特性和改进的可再加工性。
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来源期刊
Journal of Bioresources and Bioproducts
Journal of Bioresources and Bioproducts Agricultural and Biological Sciences-Forestry
CiteScore
39.30
自引率
0.00%
发文量
38
审稿时长
12 weeks
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