Barshutina Marie N, Volkov Valentyn S, Arsenin Aleksey V, Yakubovsky Dmitriy I, Melezhik Alexander V, Blokhin Alexander N, Tkachev Alexey G, Lopachev Alexander V, Kondrashov Vladislav A
Center for Photonics and 2D Materials, Moscow Institute of Physics and Technology, 141700 Dolgoprudny, Russia.
Institute of Translational Biomedicine, Saint-Petersburg State University, 199034 Saint-Petersburg, Russia.
Nanomaterials (Basel). 2021 Apr 28;11(5):1143. doi: 10.3390/nano11051143.
In this paper, we report a cost-effective and scalable approach to produce highly homogeneous graphene and CNT-based silicone composites with potential applications in diverse fields of research, including biosensors and wearable electronics. This approach includes the fabrication of hybrid fillers based on few-layer graphene and CNTs by water solution blending and manufacturing of graphene/CNT/PDMS composites through calendering in a three-roll mill. The influence of processing parameters, the graphene/CNT ratio, and hybrid filler loading was thoroughly investigated, and the optimal parameters for producing hybrid composites with superior electrical and mechanical properties were found. It was also confirmed that the graphene/CNT hybrid system exhibits a synergistic effect of non-covalent interactions between graphene sheets and CNT sidewalls. This synergistic effect prevents the aggregation of graphene sheets, facilitates the dispersion of graphene and CNTs in the silicone matrix, and contributes to the superior properties of hybrid composites compared to composites with either of these fillers alone.
在本文中,我们报道了一种具有成本效益且可扩展的方法,用于生产高度均匀的基于石墨烯和碳纳米管的有机硅复合材料,这些复合材料在包括生物传感器和可穿戴电子产品在内的各种研究领域具有潜在应用。该方法包括通过水溶液共混制备基于少层石墨烯和碳纳米管的混合填料,并通过在三辊轧机中压延制造石墨烯/碳纳米管/聚二甲基硅氧烷复合材料。我们深入研究了加工参数、石墨烯/碳纳米管比例和混合填料负载量的影响,并找到了制备具有优异电学和力学性能的混合复合材料的最佳参数。还证实了石墨烯/碳纳米管混合体系在石墨烯片层和碳纳米管侧壁之间表现出非共价相互作用的协同效应。这种协同效应可防止石墨烯片层的聚集,促进石墨烯和碳纳米管在有机硅基体中的分散,与仅含有其中一种填料的复合材料相比,有助于混合复合材料具有优异的性能。