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自增强聚四氟乙烯基材料的结构与性能

Structure and Properties of Self-Reinforced Polytetrafluoroethylene-Based Materials.

作者信息

Mei Shunqi, Ayurova Oksana, Mishigdorzhiyn Undrakh, Kornopoltsev Vasily, Kovtunets Evgeny, Demin Kirill, Garmaev Bair, Khagleev Andrei

机构信息

Hubei Digital Textile Equipment Key Laboratory, Wuhan Textile University, Wuhan 430073, China.

Department of Inorganic and Organic Chemistry, Banzarov Buryat State University, 670000 Ulan-Ude, Russia.

出版信息

Polymers (Basel). 2025 Jun 9;17(12):1609. doi: 10.3390/polym17121609.

Abstract

A promising direction in polymer material processing is the development of self-reinforced polymer composites (SRPMs), representing a relatively new group of composite materials. The self-reinforcement method allows for materials of one polymer to be combined with different molecular, supramolecular, and structural features. The high adhesive and mechanical properties of SRPMs are due to the formation of a homogeneous system with no inter-phase boundary. Moreover, self-reinforcement considers the possibility of using polymer waste to create high-strength composites, which reduces the environmental load. In the current work, the phase composition, structure, and properties of SRPMs based on polytetrafluoroethylene (PTFE) were studied. SRPMs were prepared by mixing industrial and regenerated PTFE powders and then subjected to pressing and sintering. Two types of regenerated PTFE were used for the SRPM preparation: a commercial PTFE of the TOMFLON trademark and mechanically grinded PTFE waste. The degree of crystallinity of the obtained materials (41-68%) was calculated by XRD analysis; the crystallite size was determined to be 30-69 nm. Thermal analysis of the composites was carried out by the DSC method in the temperature range of 25-370 °C. The characteristics of thermal processes in self-reinforced composites correlate with the data from structural studies of XRD and FTIR analyses. The results of dynamic mechanical analysis showed that the introduction of regenerated PTFE powder into an industrial one increased the elasticity modulus from 0.6 GPa up to 2.0-3.1 GPa. It was shown that the phase state of the SRPMs depended on the method of processing polymer waste (the type of regenerated PTFE) that determined the heat resistance and mechanical properties of the obtained composite material.

摘要

聚合物材料加工领域一个很有前景的方向是自增强聚合物复合材料(SRPMs)的开发,这是一类相对新型的复合材料。自增强方法能够使具有不同分子、超分子和结构特征的同一种聚合物材料相结合。SRPMs具有高粘合性和机械性能,这归因于其形成了一个没有相间边界的均匀体系。此外,自增强考虑了利用聚合物废料制造高强度复合材料的可能性,从而降低了环境负荷。在当前这项工作中,对基于聚四氟乙烯(PTFE)的SRPMs的相组成、结构和性能进行了研究。通过将工业用和再生的PTFE粉末混合,然后进行压制和烧结来制备SRPMs。制备SRPMs使用了两种类型的再生PTFE:TOMFLON商标的商用PTFE和机械研磨的PTFE废料。通过XRD分析计算出所得材料的结晶度(41 - 68%);微晶尺寸确定为30 - 69 nm。采用DSC方法在25 - 370℃的温度范围内对复合材料进行了热分析。自增强复合材料中热过程的特征与XRD和FTIR分析的结构研究数据相关。动态力学分析结果表明,将再生PTFE粉末引入工业用PTFE中,使弹性模量从0.6 GPa提高到了2.0 - 3.1 GPa。结果表明,SRPMs的相态取决于聚合物废料的加工方法(再生PTFE的类型),而这种方法决定了所得复合材料的耐热性和机械性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dd16/12196657/dedb43cf2c48/polymers-17-01609-g001.jpg

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