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Low-temperature plasma modification of carbon nanofillers for improved performance of advanced rubber composites

机译:碳纳米填料的低温等离子体改性,提高先进橡胶复合材料的性能

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In modern polymer industry, there still is a room for new generations of fillers capable of enhancing the performance of composite materials. Currently, much effort is being put into a process of improving mechanical properties of elastomer materials. In this work, multiwalled carbon nanotubes (MWCNTs) and graphene nanoplatelets (GnPs) were modified with silane, titanate, or zirconate using plasma treatment, in order to apply them as fillers for styrene/butadiene rubber. Following its modification, filler surface was analyzed: Surface free energy (SFE) was measured with tensiometry, and micromorphology and chemical composition were studied with scanning electron microscopy-energy-dispersive spectroscopy (SEM-EDS), while elemental composition and bonding were assessed with X-ray photoelectron spectroscopy (XPS) and time-of-flight secondary ion mass spectrometry (ToF-SIMS). Low-temperature oxygen plasma activation of MWCNT fillers leads to a significant increase in the SFE polar component, with the same effect being much weaker for GnP fillers. Grafting silanes, zirconates, and titanates on activated filler surface results in a decrease in SFE polar component-surface oxygen-containing active groups react with silane/zirconate/titanate molecules. Fillers modified in this way exhibit different micromorphology and surface chemical composition what is revealed with the SEM-EDS, ToF-SIMS, and XPS techniques. As the ultimate step, either MWCNT or GnP rubber nanocomposites were manufactured using the modified fillers with their mechanical properties and cross-link density being studied. Filler modification resulted in substantial changes both in composite performance, and in its cross-linking density. In the case of modified filler containing composites, improved tensile strength and elongation at break were observed.
机译:在现代聚合物产业中,仍然有一个新一代填料的空间,能够提高复合材料的性能。目前,大量努力正在进入改善弹性体材料的机械性能的过程中。在该工作中,使用等离子体处理用硅烷,钛酸盐或锆酸盐改性多壁碳纳米管(MWCNT)和石墨烯纳米纳米键(GNP),以将它们涂抹为苯乙烯/丁二烯橡胶的填料。在修饰后,分析填料表面:用张力测定测量表面自由能(SFE),并使用扫描电子显微镜 - 能量 - 分散光谱(SEM-EDS)进行微晶和化学组成,同时评估元素组成和键合X射线光电子体光谱(XPS)和飞行时间二次离子质谱(TOF-SIMS)。低温氧等离子体激活MWCNT填料导致SFE极性成分的显着增加,具有相同的效果对于GNP填料较弱。接枝硅烷,锆酸盐和活性填料表面上的钛酸盐导致含SFE极性成分表面氧的活性基团的降低与硅烷/锆酸盐/钛酸盐分子反应。以这种方式修饰的填料表现出不同的微晶和表面化学成分,该组合物用SEM-EDS,TOF-SIMS和XPS技术揭示了什么。作为最终步骤,使用改性填料制造MWCNT或GNP橡胶纳米复合材料,其力学性能和正在研究的交联密度。填料改性导致复合性能和交联密度的大量变化。在改性填充剂的含有复合材料的情况下,观察到改善的拉伸强度和断裂处的伸长率。

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