Damonte Giacomo, Vallin Alberto, Fina Alberto, Monticelli Orietta
Dipartimento di Chimica e Chimica Industriale, Università degli studi di Genova, Via Dodecaneso 31, 16146 Genoa, Italy.
Dipartimento di Scienza Applicata e Tecnologia, Politecnico di Torino-sede di Alessandria, Viale Teresa Michel, 5, 15121 Alessandria, Italy.
Nanomaterials (Basel). 2021 May 24;11(6):1385. doi: 10.3390/nano11061385.
The aim of this work was to develop an effective approach to improve the graphite dispersion and, consequently, the electrical conductivity of nanocomposites based on polycaprolactone (PCL) and graphite nanoplates (GNP). With this aim, a polymeric additive was designed to be compatible with the polymer matrix and capable of interacting with the graphite layers. Indeed, the compound consists of a low molecular mass PCL ending with a pyrene group (Pyr-PCL). The exploitation of such a molecule is expected to promote from one side specific interactions of the pyrene terminal group with the surface of graphite layers and from the other to guarantee the compatibility with PCL, having a chain with the same nature as the matrix. The features of the nanocomposites prepared by directly blending PCL with GNP were compared with those of the same systems also containing the additive. Moreover, a neat mixture, based on PCL and PCL-Pyr, was prepared and characterized. The specific interactions between the ad hoc synthesized compound and graphite were verified by UV measurements, while SEM characterization demonstrated a finer dispersion of GNP in the samples containing Pyr-PCL. GNP nucleating effect, proved by the increase in the crystallization temperature, was observed in all the samples containing the nanofiller. Moreover, a significant improvement of the electrical conductivity was found in the systems based on the pyrenyl terminated PCL. This peculiar and interesting phenomenon was related to the optimized nanofiller dispersion and to the ameliorated compatibility with the polymer matrix.
这项工作的目的是开发一种有效的方法,以改善石墨的分散性,并因此提高基于聚己内酯(PCL)和石墨纳米片(GNP)的纳米复合材料的电导率。出于这个目的,设计了一种聚合物添加剂,使其与聚合物基体相容,并能够与石墨层相互作用。实际上,该化合物由末端带有芘基团的低分子量PCL(Pyr-PCL)组成。预计利用这种分子一方面可促进芘末端基团与石墨层表面的特定相互作用,另一方面可确保与PCL的相容性,因为其链与基体具有相同的性质。将通过直接将PCL与GNP共混制备的纳米复合材料的特性与同样含有该添加剂的相同体系的特性进行了比较。此外,制备并表征了基于PCL和PCL-Pyr的纯混合物。通过紫外测量验证了特制合成化合物与石墨之间的特定相互作用,而扫描电子显微镜表征表明GNP在含有Pyr-PCL的样品中分散得更细。在所有含有纳米填料的样品中均观察到了GNP的成核效应,这通过结晶温度的升高得以证明。此外,在基于芘基封端的PCL的体系中发现电导率有显著提高。这种奇特而有趣的现象与优化的纳米填料分散性以及与聚合物基体改善的相容性有关。