Dipartimento di Ingegneria Industriale, Università di Salerno, Via Ponte Don Melillo, I-84084 Fisciano (SA), Italy.
Nanotechnology. 2013 Aug 2;24(30):305704. doi: 10.1088/0957-4484/24/30/305704. Epub 2013 Jul 10.
Heat treatment of carbon nanofibers has proven to be an effective method in removing defects from carbon nanofibers, causing a strong increase in their structural perfection and thermal stability. It affects the bonding states of carbon atoms in the nanofiber structure and causes a significant transformation in the hybridization state of the bonded carbon atoms.Nanofilled resins made of heat-treated CNF show significant increases in their electrical conductivity even at low concentrations. This confirms that enhancement in the perfection of the fiber structure with consequent change in the morphological features plays a prominent role in affecting the electrical properties. Indeed heat-treated CNFs display a stiff structure and a smooth surface which tends to lower the thickness of the unavoidable insulating epoxy layer formed around the CNF which, in turn, plays a fundamental role in the electrical transport properties along the conducting clusters. This might be very beneficial in terms of electrical conductivity but might have negligible effect on the mechanical properties.
热处理碳纤维已被证明是一种有效的方法,可以去除碳纤维中的缺陷,使其结构的完美度和热稳定性得到显著提高。它会影响纳米纤维结构中碳原子的键合状态,并导致键合碳原子的杂化状态发生显著变化。经过热处理的 CNF 制成的纳米填充树脂即使在低浓度下也表现出显著的电导率增加。这证实了纤维结构的完善度的提高以及随之而来的形态特征的变化对电性能有显著的影响。事实上,经过热处理的 CNF 呈现出刚性结构和光滑的表面,这往往会降低围绕 CNF 形成的不可避免的绝缘环氧树脂层的厚度,而这反过来又在沿着导电簇的电输运特性中起着重要作用。这在电导率方面可能是非常有益的,但对机械性能的影响可能可以忽略不计。