Chrissopoulou Kiriaki, Androulaki Krystalenia, Labardi Massimiliano, Anastasiadis Spiros H
Institute of Electronic Structure and Laser, Foundation for Research and Technology-Hellas, N. Plastira 100, 700 13 Heraklion Crete, Greece.
Department of Chemistry, University of Crete, P.O. Box 2208, 710 03 Heraklion Crete, Greece.
Polymers (Basel). 2021 Mar 25;13(7):1008. doi: 10.3390/polym13071008.
Nanocomposites of hyperbranched polymers with graphitic materials are investigated with respect to their structure and thermal properties as well as the dynamics of the polymer probing the effect of the different intercalated or exfoliated structure. Three generations of hyperbranched polyester polyols are mixed with graphite oxide (GO) and the favorable interactions between the polymers and the solid surfaces lead to intercalated structure. The thermal transitions of the confined chains are suppressed, whereas their dynamics show similarities and differences with the dynamics of the neat polymers. The three relaxation processes observed for the neat polymers are observed in the nanohybrids as well, but with different temperature dependencies. Thermal reduction of the graphite oxide in the presence of the polymer to produce reduced graphite oxide (rGO) reveals an increase in the reduction temperature, which is accompanied by decreased thermal stability of the polymer. The de-oxygenation of the graphite oxide leads to the destruction of the intercalated structure and to the dispersion of the rGO layers within the polymeric matrix because of the modification of the interactions between the polymer chains and the surfaces. A significant increase in the conductivity of the resulting nanocomposites, in comparison to both the polymers and the intercalated nanohybrids, indicates the formation of a percolated rGO network.
研究了超支化聚合物与石墨材料的纳米复合材料的结构、热性能以及聚合物的动力学,以探究不同插层或剥离结构的影响。将三代超支化聚酯多元醇与氧化石墨(GO)混合,聚合物与固体表面之间的良好相互作用导致形成插层结构。受限链的热转变受到抑制,而其动力学与纯聚合物的动力学既有相似之处也有不同之处。在纳米杂化物中也观察到了纯聚合物中出现的三种弛豫过程,但具有不同的温度依赖性。在聚合物存在下对氧化石墨进行热还原以制备还原氧化石墨(rGO),结果显示还原温度升高,同时聚合物的热稳定性降低。氧化石墨的脱氧导致插层结构的破坏以及rGO层在聚合物基质中的分散,这是由于聚合物链与表面之间相互作用的改变所致。与聚合物和插层纳米杂化物相比,所得纳米复合材料的电导率显著增加,表明形成了渗流的rGO网络。