Department of Mathematics and Physical Sciences, University of Sussex, Brighton BN1 9QH, UK.
Department of Civil and Environmental Engineering, University of Perugia and INSTM Research Unit, Strada di Pentima 4, 05100 Terni, Italy.
Int J Mol Sci. 2020 Nov 14;21(22):8585. doi: 10.3390/ijms21228585.
Hybrid nanomaterials fabricated by the heterogeneous integration of 1D (carbon nanotubes) and 2D (graphene oxide) nanomaterials showed synergy in electrical and mechanical properties. Here, we reported the infiltration of carboxylic functionalized single-walled carbon nanotubes (C-SWNT) into free-standing graphene oxide (GO) paper for better electrical and mechanical properties than native GO. The stacking arrangement of GO sheets and its alteration in the presence of C-SWNT were comprehensively explored through scanning electron microscopy, X-ray photoelectron spectroscopy (XPS) and X-ray diffraction. The C-SWNTs bridges between different GO sheets produce a pathway for the flow of electrical charges and provide a tougher hybrid system. The nanoscopic surface potential map reveals a higher work function of the individual functionalised SWNTs than surrounded GO sheets showing efficient charge exchange. We observed the enhanced conductivity up to 50 times and capacitance up to 3.5 times of the hybrid structure than the GO-paper. The laminate of polystyrene composites provided higher elastic modulus and mechanical strength when hybrid paper is used, thus paving the way for the exploitation of hybrid filler formulation in designing polymer composites.
通过将一维(碳纳米管)和二维(氧化石墨烯)纳米材料的异质集成制造的杂化纳米材料在电学和力学性能方面表现出协同作用。在这里,我们报道了羧酸功能化单壁碳纳米管(C-SWNT)渗透到独立的氧化石墨烯(GO)纸中,与原生 GO 相比,其具有更好的电学和力学性能。通过扫描电子显微镜、X 射线光电子能谱(XPS)和 X 射线衍射,全面研究了 GO 片的堆叠排列及其在 C-SWNT 存在下的变化。C-SWNTs 在不同 GO 片之间架桥,为电荷流动提供了途径,并提供了更坚韧的杂化体系。纳米级表面电势图显示,单个功能化 SWNTs 的功函数高于周围的 GO 片,表明电荷交换效率更高。我们观察到,与 GO 纸相比,混合结构的电导率提高了 50 倍,电容提高了 3.5 倍。当使用杂化纸时,聚苯乙烯复合材料的层压板提供了更高的弹性模量和机械强度,从而为在设计聚合物复合材料时利用杂化填料配方铺平了道路。