Yang Kuijian, Chen Yuli, Pan Fei, Wang Shengtao, Ma Yong, Liu Qijun
Institute of Solid Mechanics, International Research Institute for Multidisciplinary Science, Beihang University, Beijing 100191, China.
Department of Aerospace Engineering, University of Illinois, Champaign, IL 61801, USA.
Materials (Basel). 2016 Jan 7;9(1):32. doi: 10.3390/ma9010032.
The buckling of graphene sheets on substrates can significantly degrade their performance in materials and devices. Therefore, a systematic investigation on the buckling behavior of monolayer graphene sheet/substrate systems is carried out in this paper by both molecular mechanics simulations and theoretical analysis. From 70 simulation cases of simple-supported graphene sheets with different sizes under uniaxial compression, two different buckling modes are investigated and revealed to be dominated by the graphene size. Especially, for graphene sheets with length larger than 3 nm and width larger than 1.1 nm, the buckling mode depends only on the length/width ratio. Besides, it is revealed that the existence of graphene substrate can increase the critical buckling stress and strain to 4.39 N/m and 1.58%, respectively, which are about 10 times those for free-standing graphene sheets. Moreover, for graphene sheets with common size (longer than 20 nm), both theoretical and simulation results show that the critical buckling stress and strain are dominated only by the adhesive interactions with substrate and independent of the graphene size. Results in this work provide valuable insight and guidelines for the design and application of graphene-derived materials and nano-electromechanical systems.
石墨烯片材在基底上的屈曲会显著降低其在材料和器件中的性能。因此,本文通过分子力学模拟和理论分析,对单层石墨烯片材/基底系统的屈曲行为进行了系统研究。从70个不同尺寸的简支石墨烯片材在单轴压缩下的模拟案例中,研究并揭示了两种不同的屈曲模式,且其主要由石墨烯尺寸决定。特别是,对于长度大于3 nm且宽度大于1.1 nm的石墨烯片材,屈曲模式仅取决于长/宽比。此外,研究表明,石墨烯基底的存在可将临界屈曲应力和应变分别提高到4.39 N/m和1.58%,这大约是独立石墨烯片材的10倍。而且,对于常见尺寸(长于20 nm)的石墨烯片材,理论和模拟结果均表明,临界屈曲应力和应变仅由与基底的粘附相互作用决定,而与石墨烯尺寸无关。本文的研究结果为石墨烯衍生材料和纳米机电系统的设计与应用提供了有价值的见解和指导。