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石墨烯同素异形体中形态控制的拉伸力学特性

Morphology-Controlled Tensile Mechanical Characteristics in Graphene Allotropes.

作者信息

Sui Chao, Zhao Yushun, Zhang Zhisen, He Jianying, Zhang Zhiliang, He Xiaodong, Wang Chao, Wu Jianyang

机构信息

Department of Physics, Research Institute for Biomimetics and Soft Matter, Fujian Provincial Key Laboratory for Soft Functional Materials Research, Xiamen University, Xiamen 361005, P. R. China.

Center for Composite Materials and Structures, Harbin Institute of Technology, Harbin 150080, P. R. China.

出版信息

ACS Omega. 2017 Jul 26;2(7):3977-3988. doi: 10.1021/acsomega.7b00732. eCollection 2017 Jul 31.

Abstract

A number of graphene allotropes constructed by sp, sp, and sp hybrid orbitals have recently been proposed to provide the broad potential for practical applications. Here, using molecular dynamics simulation, the structural and tensile characteristics of nine distinct graphene allotropes have been investigated to understand their morphology-controlled mechanical properties. Results show that the averaged out-of-plane displacement is independent of nonhexagons while being dominated by the arrangement of carbon polygons on the sheets. Each sheet possesses unique surface morphology and in-plane tensile properties that significantly vary with morphology and anisotropic crystalline orientation. Brittle, semibrittle, or ductile failure is observed, depending on the evolution of their packed polygons in facilitating tension deformation and in dissipating energy. Particularly, pentagraphene exhibits superductility as a consequence of large-scale structural transformations, accommodating stress relaxation beyond initial failure. Two distinct plastic deformation patterns in overstretched pentagraphene are uncovered, depending on the tension directions: one is dominated by structural transition from sp-carbon-contained penta-(C) to mixed sp-carbon polygons and the other is mainly controlled by a stepwise pentagon-to-hexagon transition. These findings provide physical insights into the structural evolvement of two-dimensional graphene allotropes and their effects on the mechanical properties.

摘要

最近有人提出,由sp、sp²和sp³杂化轨道构建的多种石墨烯同素异形体具有广泛的实际应用潜力。在此,通过分子动力学模拟,研究了九种不同石墨烯同素异形体的结构和拉伸特性,以了解其形态控制的力学性能。结果表明,平均面外位移与非六边形无关,而主要由片层上碳多边形的排列决定。每一片层都具有独特的表面形态和平面内拉伸性能,这些性能会随着形态和各向异性晶体取向而显著变化。根据其堆积多边形在促进拉伸变形和耗散能量方面的演变情况,观察到了脆性、半脆性或延性破坏。特别是,五边形石墨烯由于大规模结构转变而表现出超延展性,能够承受初始破坏后的应力松弛。根据拉伸方向,在过度拉伸的五边形石墨烯中发现了两种不同的塑性变形模式:一种主要由含sp碳的五边形(C)向混合sp碳多边形的结构转变主导,另一种主要由五边形到六边形的逐步转变控制。这些发现为二维石墨烯同素异形体的结构演变及其对力学性能的影响提供了物理见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/04d0/6641645/6c78d8612e49/ao-2017-00732h_0009.jpg

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