School of Chemical Engineering, Department of Bioproducts and Biosystems, Aalto University, P.O. Box 16300, 00076 Aalto, Finland.
Nanoscale. 2018 May 24;10(20):9569-9582. doi: 10.1039/c8nr02052c.
The excellent functional properties of graphene and micro-nanofibrillated cellulose (MNFC) offer plenty of possibilities for wide ranging applications in combination as a composite material. In this study, flexible graphene/microfibrillated cellulose (MFC) composite films were prepared by a simple method of co-exfoliation of graphite in an MFC suspension by high-shear exfoliation. We show that pristine graphene, without any chemical treatment, was homogeneously dispersed in the MFC matrix, and the produced composites showed enhanced thermal, electrical and mechanical properties compared to a non-co-exfoliated control. The film properties were studied by XPS, XRD, Raman, SEM, FTIR, TGA, nitrogen sorption, UV-vis spectroscopy, optical and formation analysis tests. At 0.5 wt% loading, the specific surface area of graphene/MFC composites increased from 218 to 273 m2 g-1 while the tensile strength and Young's modulus for the graphene/MFC composites increased by 33% and 28% respectively. Thermal stability was enhanced by 22% at 9 wt% loading and the composites showed a high electrical conductivity of 2.4 S m-1. This simple method for the fabrication of graphene/MFC composites with enhanced controlled functional properties can prove to be industrially beneficial, and is expected to open up a new route for novel potential applications of materials based largely on renewable resources.
石墨烯和微纳米纤维素(MNFC)具有优异的功能特性,为复合材料的广泛应用提供了大量可能性。在这项研究中,通过高剪切剥离法将石墨在 MNFC 悬浮液中共同剥离,制备了具有柔韧性的石墨烯/微纤化纤维素(MFC)复合薄膜。我们表明,未经任何化学处理的原始石墨烯均匀分散在 MFC 基质中,与未共剥离的对照相比,所制备的复合材料表现出增强的热、电和机械性能。通过 XPS、XRD、拉曼、SEM、FTIR、TGA、氮气吸附、UV-vis 光谱、光学和形态分析测试对薄膜性能进行了研究。在 0.5wt%的负载量下,石墨烯/MFC 复合材料的比表面积从 218 增加到 273m2g-1,而石墨烯/MFC 复合材料的拉伸强度和杨氏模量分别提高了 33%和 28%。在 9wt%的负载量下,热稳定性提高了 22%,复合材料的电导率高达 2.4S m-1。这种制备具有增强可控功能特性的石墨烯/MFC 复合材料的简单方法在工业上可能是有益的,并有望为基于可再生资源的新型潜在材料应用开辟新途径。