Tokonami Ryoma, Aoki Katsuhito, Goto Teruya, Takahashi Tatsuhiro
Department of Organic Materials Science, Graduated School of Organic Materials Science, Yamagata University, 4-3-16 Jonan, Yonezawa 992-8510, Yamagata, Japan.
Polymers (Basel). 2022 Sep 24;14(19):3999. doi: 10.3390/polym14193999.
The surface of carbon fibers (CFs) is often modified by multi-walled carbon nanotubes (MWCNTs), and the effect of the interface on the mechanical properties has been reported mostly for epoxy matrices. We achieved effective surface modification of CFs by a simple two-step process to graft a large amount of MWCNTs using a highly reactive polymer to enhance the bonding between CFs and MWCNTs. The first step was the reactive mono-molecular coating of a reactive polymer (poly-2-isopropenyl-2-oxazoline; Pipozo) that has high reactivity with COOH from CFs and MWCNTs. The high reactivity between the oxazoline group and COOH or phenol OH was confirmed for low-molecular-weight reactions. The second step was the coating of MWCNTs from a dispersion in a solvent. This simple process resulted in a substantial amount of MWCNTs strongly bonded to CF, even after washing. The MWCNTs grafted onto CFs remained even after melt-mixing. The effect on the interface, i.e., physical anchoring, led to an improvement of the mechanical properties. The novelty of the present study is that Pipozo acted as a molecular bonding layer between CFs and MWCNTs as a physical anchoring structure formed by a simple process, and the interface caused a 20% improvement in the tensile strength and modulus. This concept of a composite having a physical anchoring structure of MWCNTs on CFs has potential applications for lightweight thermoplastics, such as in the automotive industry.
碳纤维(CFs)的表面通常会用多壁碳纳米管(MWCNTs)进行改性,并且关于界面在机械性能方面的影响大多是针对环氧基体进行报道的。我们通过一个简单的两步法实现了对CFs的有效表面改性,即使用一种高反应性聚合物接枝大量MWCNTs,以增强CFs与MWCNTs之间的结合力。第一步是对一种与CFs和MWCNTs中的COOH具有高反应性的反应性聚合物(聚-2-异丙烯基-2-恶唑啉;Pipozo)进行反应性单分子涂层处理。对于低分子量反应,已证实恶唑啉基团与COOH或酚羟基之间具有高反应性。第二步是从溶剂中的分散体对MWCNTs进行涂层处理。即使经过洗涤,这个简单的过程也能使大量MWCNTs牢固地结合在CF上。接枝到CFs上的MWCNTs在熔融混合后仍然存在。对界面的影响,即物理锚固作用,导致了机械性能的提高。本研究的新颖之处在于,Pipozo作为CFs和MWCNTs之间的分子粘结层,形成了一种通过简单过程得到的物理锚固结构,并且该界面使拉伸强度和模量提高了20%。这种在CFs上具有MWCNTs物理锚固结构的复合材料概念在轻质热塑性塑料方面具有潜在应用,例如在汽车工业中。