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聚丁二酸丁二醇酯纳米复合材料的机械、结晶、流变及超临界CO₂发泡性能:碳纳米纤维含量的影响

Mechanical, Crystallization, Rheological, and Supercritical CO Foaming Properties of Polybutylene Succinate Nanocomposites: Impact of Carbon Nanofiber Content.

作者信息

Chen Zhou, Yin Xichen, Chen Hui, Fu Xuguang, Sun Yuyue, Chen Qian, Liu Weidong, Shen Xiao

机构信息

School of Mechanical and Power Engineering, Nanjing Tech University, Nanjing 211800, China.

Jiangsu Zhongneng Polysilicon Technology Development Co., Ltd., Xuzhou 221000, China.

出版信息

Polymers (Basel). 2023 Dec 20;16(1):28. doi: 10.3390/polym16010028.

Abstract

As a substitute for conventional polymers for the preparation of biodegradable microcellular polymeric foams, polybutylene succinate (PBS) presents one of the most promising alternatives. However, the low melt strength of PBS makes it difficult to produce high-performance microcellular foams. This study aimed to improve the melt strength of PBS and explore the mechanical, thermal, crystalline, rheological, and supercritical CO foaming properties of PBS nanocomposites by using carbon nanofibers (CNFs). This study found that nanocomposites containing 7 wt% CNF exhibited the highest tensile strength, Young's modulus, and bending strength. Moreover, the CNF nanofillers were well dispersed in the PBS matrix without significant agglomeration, even at high filler concentrations. Furthermore, the nanocomposites demonstrated improved melting temperature and crystallinity compared with pure PBS. The rheological analysis showed that the addition of CNFs significantly increased PBS viscosity at low frequencies due to the interaction between the PBS molecular chains and CNFs and the entanglement of CNFs, resulting in a more complete physical network formation when the CNF content reached above 3 wt%. During the supercritical CO foaming process, the addition of CNFs resulted in increased cell density, smaller cells, and thicker cell walls, with good laps formed between the fibers on the cell walls of nanocomposite foams. Moreover, the electrical conductivity and electromagnetic interference (EMI) shielding properties of the foamed material were studied, and a nanocomposite foam containing 7 wt% CNF showed good electrical conductivity (4.5 × 10 S/m) and specific EMI shielding effectiveness (EMI SE) (34.7 dB/g·cm). Additionally, the nanocomposite foam with 7 wt% CNF also exhibited good compression properties (21.7 MPa). Overall, this work has successfully developed a high-performance, multifunctional PBS-based nanocomposite foam, making it suitable for applications in various fields.

摘要

作为制备可生物降解微孔聚合物泡沫的传统聚合物的替代品,聚丁二酸丁二醇酯(PBS)是最有前途的替代品之一。然而,PBS的低熔体强度使其难以生产高性能的微孔泡沫。本研究旨在通过使用碳纳米纤维(CNF)提高PBS的熔体强度,并探索PBS纳米复合材料的机械、热、结晶、流变和超临界CO发泡性能。本研究发现,含有7 wt% CNF的纳米复合材料表现出最高的拉伸强度、杨氏模量和弯曲强度。此外,即使在高填料浓度下,CNF纳米填料也能很好地分散在PBS基体中,没有明显的团聚。此外,与纯PBS相比,纳米复合材料的熔融温度和结晶度有所提高。流变学分析表明,由于PBS分子链与CNF之间的相互作用以及CNF的缠结,在低频下添加CNF显著增加了PBS的粘度,当CNF含量达到3 wt%以上时,形成了更完整的物理网络。在超临界CO发泡过程中,添加CNF导致泡孔密度增加、泡孔尺寸减小和泡孔壁增厚,在纳米复合泡沫的泡孔壁上的纤维之间形成了良好的搭接。此外,研究了发泡材料的电导率和电磁干扰(EMI)屏蔽性能,含有7 wt% CNF的纳米复合泡沫表现出良好的电导率(4.5×10 S/m)和比电磁干扰屏蔽效能(EMI SE)(34.7 dB/g·cm)。此外,含有7 wt% CNF的纳米复合泡沫也表现出良好的压缩性能(21.7 MPa)。总体而言,这项工作成功开发了一种高性能、多功能的基于PBS的纳米复合泡沫,使其适用于各种领域的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dd7c/10780851/eae22b83053a/polymers-16-00028-g001.jpg

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