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Soliton instability and fold formation in laterally compressed graphene

机译:横向压缩石墨烯中的孤子不稳定性和褶皱形成

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摘要

We investigate-through simulations and analytical calculations-the consequences of uniaxial lateral compression applied to the upper layer of multilayer graphene. The simulations of compressed graphene show that strains larger than 2.8% induce soliton-like deformations that further develop into large, mobile folds. Such folds were indeed experimentally observed in graphene and other solid lubricants two-dimensional (2D) materials. Interestingly, in the soliton-fold regime, the shear stress decreases with the strain s, initially as s(-2/3) and rapidly going to zero. Such instability is consistent with the recently observed negative dynamic compressibility of 2D materials. We also predict that the curvatures of the soliton-folds are given by r(c) = delta root beta/2 alpha, where 1 <= delta <= 2, and beta and alpha are respectively related to the layer bending modulus and to the interlayer binding energy of the material. This finding might allow experimental estimates of the beta/alpha a ratio of 2D materials from fold morphology.
机译:我们通过模拟和分析计算来研究应用于多层石墨烯上层的单轴横向压缩的后果。压缩石墨烯的模拟表明,大于2.8%的应变会诱发类似孤子的形变,并进一步发展成较大的活动折叠。确实在石墨烯和其他固体润滑剂二维(2D)材料中通过实验观察到了此类褶皱。有趣的是,在孤子折叠状态下,剪切应力随应变s减小,最初为s(-2/3),并迅速变为零。这种不稳定性与最近观察到的2D材料的负动态可压缩性一致。我们还预测,孤子折叠的曲率由r(c)= delta root beta / 2 alpha给出,其中1 <= delta <= 2,且beta和alpha分别与层弯曲模量和材料的层间结合能。这一发现可能允许根据折叠形态对β/ alpha和2D材料的比率进行实验估计。

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