Vlassiouk Ivan, Polizos Georgios, Cooper Ryan, Ivanov Ilia, Keum Jong Kahk, Paulauskas Felix, Datskos Panos, Smirnov Sergei
†Oak Ridge National Laboratory, Oak Ridge, Tennessee 37830, United States.
‡Department of Chemistry and Biochemistry, New Mexico State University, Las Cruces, New Mexico 88011, United States.
ACS Appl Mater Interfaces. 2015 May 27;7(20):10702-9. doi: 10.1021/acsami.5b01367. Epub 2015 May 12.
Graphene is an ideal candidate for lightweight, high-strength composite materials given its superior mechanical properties (specific strength of 130 GPa and stiffness of 1 TPa). To date, easily scalable graphene-like materials in a form of separated flakes (exfoliated graphene, graphene oxide, and reduced graphene oxide) have been investigated as candidates for large-scale applications such as material reinforcement. These graphene-like materials do not fully exhibit all the capabilities of graphene in composite materials. In the current study, we show that macro (2 inch × 2 inch) graphene laminates and fibers can be produced using large continuous sheets of single-layer graphene grown by chemical vapor deposition. The resulting composite structures have potential to outperform the current state-of-the-art composite materials in both mechanical properties and electrical conductivities (>8 S/cm with only 0.13% volumetric graphene loading and 5 × 10(3) S/cm for pure graphene fibers) with estimated graphene contributions of >10 GPa in strength and 1 TPa in stiffness.
鉴于石墨烯具有卓越的机械性能(比强度为130吉帕斯卡,刚度为1太帕斯卡),它是轻质、高强度复合材料的理想候选材料。迄今为止,已对易于规模化生产的片状分离形式的类石墨烯材料(剥离石墨烯、氧化石墨烯和还原氧化石墨烯)进行了研究,以作为材料增强等大规模应用的候选材料。这些类石墨烯材料并未在复合材料中充分展现出石墨烯的所有性能。在当前研究中,我们表明可以使用通过化学气相沉积生长的大面积连续单层石墨烯片来制备宏观尺寸(2英寸×2英寸)的石墨烯层压板和纤维。所得的复合结构在机械性能和电导率方面均有可能超越当前的先进复合材料(仅0.13%的体积石墨烯负载量时电导率>8 S/cm,纯石墨烯纤维的电导率为5×10³ S/cm),估计石墨烯对强度的贡献>10吉帕斯卡,对刚度的贡献为1太帕斯卡。