Blending Poly(dimethylsiloxane) with Poly(lactic acid) Using Polyhydroxyurethane Additives.

IF 3.5
ACS Applied Engineering Materials Pub Date : 2026-01-29 eCollection Date: 2026-02-27 DOI:10.1021/acsaenm.5c01078
Georges R Younes, Bentolhoda Heli, Abdellah Ajji
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引用次数: 0

Abstract

This work blends polydimethylsiloxane (PDMS) with poly-(lactic acid) (PLA) using polyhydroxyurethane (PHU) structures. The PHU is synthesized from mannitol biscarbonate and a short-chain PDMS-based diamine. The main objectives are, first, to explore the application of the PDMS-based PHU as an additive for PLA and, second, to enhance the flexibility and hydrophobicity of PLA for potential applications in sustainable packaging and biomedical nonwoven materials, such as face masks. PLA/PHU blends are prepared via melt-blending at various weight ratios and characterized using spectroscopic, thermal, rheological, morphological, and mechanical analyses. The blend containing 5 wt % PHU exhibits the optimal performance, with a 9-fold increase in elongation at break and an 18° increase in water contact angle compared to neat PLA, indicating improved toughness and hydrophobicity. Fourier-transform infrared spectroscopy and rheological studies confirm the presence of hydrogen bonding interactions between PLA and PHU, while differential scanning calorimetry confirms the partial miscibility of the blends. Then, electrospinning of neat PLA and the blend with 5 wt % PHU is optimized using a low-toxicity dioxane/acetone (40/60 wt/wt) solvent system. The resulting nonwoven mats exhibit similar physical properties between neat PLA and the blend, and they demonstrate higher porosity, smaller fiber and pore diameters, and superior hydrophobicity than polypropylene (PP) outer and middle face mask layers. Besides, hydrolytic degradation testing reveals accelerated degradation of PLA films with the introduction of the PHU and complete degradation of PLA mats in basic media. Finally, biofilm formation assays, using Staphylococcus aureus and Pseudomonas aeruginosa, validate the antibiofouling potential of both PLA and PLA/PHU films and mats.

用聚羟基聚氨酯添加剂共混聚二甲基硅氧烷与聚乳酸。
本研究采用聚羟基聚氨酯(PHU)结构将聚二甲基硅氧烷(PDMS)与聚乳酸(PLA)共混。PHU是由甘露醇二碳酸酯和短链pms基二胺合成的。主要目的是,首先,探索pdm基PHU作为PLA添加剂的应用,其次,增强PLA的柔韧性和疏水性,以用于可持续包装和生物医学非织造材料,如口罩。PLA/PHU共混物是通过熔融共混制备的,并使用光谱、热、流变、形态和力学分析进行表征。含有5 wt % PHU的共混物表现出最佳性能,与纯PLA相比,断裂伸长率提高了9倍,水接触角增加了18°,表明韧性和疏水性得到了改善。傅里叶变换红外光谱和流变学研究证实了PLA和PHU之间存在氢键相互作用,而差示扫描量热法证实了共混物的部分混相。然后,使用低毒的二氧六烷/丙酮(40/60 wt/wt)溶剂体系对纯PLA和5 wt % PHU共混物进行静电纺丝优化。所得的无纺布席子在纯聚乳酸和共混物之间具有相似的物理性能,并且具有更高的孔隙率,更小的纤维和孔径,以及比聚丙烯(PP)外层和中间层更好的疏水性。此外,水解降解测试表明,随着PHU的引入,PLA膜的降解加速,PLA垫在基本介质中完全降解。最后,利用金黄色葡萄球菌和铜绿假单胞菌进行生物膜形成实验,验证了PLA和PLA/PHU膜和垫的抗污潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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期刊介绍: ACS Applied Engineering Materials is an international and interdisciplinary forum devoted to original research covering all aspects of engineered materials complementing the ACS Applied Materials portfolio. Papers that describe theory simulation modeling or machine learning assisted design of materials and that provide new insights into engineering applications are welcomed. The journal also considers experimental research that includes novel methods of preparing characterizing and evaluating new materials designed for timely applications. With its focus on innovative applications ACS Applied Engineering Materials also complements and expands the scope of existing ACS publications that focus on materials science discovery including Biomacromolecules Chemistry of Materials Crystal Growth & Design Industrial & Engineering Chemistry Research Inorganic Chemistry Langmuir and Macromolecules.The scope of ACS Applied Engineering Materials includes high quality research of an applied nature that integrates knowledge in materials science engineering physics mechanics and chemistry.
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