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Low-Pressure H2 NH3 Microwave Plasma Treatment of Polytetrafluoroethylene (PTFE) Powders: Chemical Thermal and Wettability Analysis

机译:聚四氟乙烯(PTFE)粉末的低压H2NH3微波等离子体处理:化学热和润湿性分析

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摘要

Functionalization of Polytetrafluoroethylene (PTFE) powders of ~6 μm particle size is carried out using low-pressure 2.45 GHz H2, NH3 microwave plasmas for various durations (2.5, 10 h) to chemically modify their surface and alter their surface energy. The X-ray Photoelectron Spectroscopy (XPS) analyses reveal that plasma treatment leads to significant defluorination (F/C atomic ratio of 1.13 and 1.30 for 10 h NH3 and H2 plasma treatments, respectively vs. 1.86 for pristine PTFE), along with the incorporation of functional polar moieties on the surface, resulting in enhanced wettability. Analysis of temperature dependent XPS revealed a loss of surface moieties above 200 °C, however, the functional groups are not completely removable even at higher temperatures (>300 °C), thus enabling the use of plasma treated PTFE powders as potential tribological fillers in high temperature engineering polymers. Ageing studies carried over a period of 12 months revealed that while the surface changes degenerate over time, again, they are not completely reversible. These functionalised PTFE powders can be further used for applications into smart, high performance materials such as tribological fillers for engineering polymers and bio-medical, bio-material applications.
机译:使用低压2.45 GHz H2,NH3微波等离子体在各种持续时间(2.5、10 h)内对粒径约为6μm的聚四氟乙烯(PTFE)粉末进行功能化,以化学改性其表面并改变其表面能。 X射线光电子能谱(XPS)分析表明,等离子体处理会导致显着的脱氟(对于NH3和H2等离子体处理10 h,F / C原子比分别为1.13和1.30,而对于原始PTFE则为1.86)。在表面上具有功能性极性基团,从而提高了润湿性。对温度依赖性XPS的分析表明,高于200°C的表面部分会损失,但是,即使在较高的温度(> 300°C)下,官能团也无法完全去除,因此可以将经等离子体处理的PTFE粉末用作潜在的摩擦填料。高温工程聚合物。历时12个月的老化研究表明,尽管表面变化会随着时间的推移而退化,但它们并不是完全可逆的。这些功能化的PTFE粉末可进一步用于智能,高性能的材料中,例如用于工程聚合物和生物医学,生物材料应用的摩擦填料。

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