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Large stretchability and failure mechanism of graphene kirigami under tension

机译:大的拉伸性和破坏机理石墨烯剪纸艺术张力下

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From the macro-to the nanoscale, kirigami structures show novel and tunable properties by tailoring the original two-dimensional sheets. In this study, the large stretchability and failure behavior in graphene nanoribbon kirigami (GNR-k) are obtained using the finite element (FE) method and molecular dynamics (MD) simulations. The carbon-carbon bond in the FE method is equivalent to a nonlinear Timoshenko beam based on the Tersoff-Brenner potential. All the results from the present FE method are in reasonable agreement with those from our MD simulations using the REBO potential. These results from the two methods show that the maximum ultimate strain of GNR-k (around 100%) is around 4 times higher than that of a pristine graphene nanoribbon (GNR), whereas the minimum ultimate stress of GNR-k is around one order of magnitude lower than that of the GNR. In particular, the large stretchability of GNR-k is indirectly proven to be mainly derived from the out-of-plane bending deformation by measuring the nonlinear mechanical properties of paper kirigami. Our results provide physical insights into the origins of the large stretchability of GNR-k and make GNR-k applicable to flexible nanodevices.
机译:从纳米尺度的宏,剪纸艺术结构展示小说和可调特性调整原来的二维表。这项研究中,大的拉伸性和失败行为在石墨烯nanoribbon剪纸艺术(GNR-k)得到了使用有限元(FE)方法和分子动力学(MD)模拟。碳碳键的有限元方法是等价的非线性得票率最高梁的基础上Tersoff-Brenner潜力。目前有限元方法在合理的协议与我们使用REBO MD模拟的潜力。表明GNR-k的最大极限应变(约100%)约4倍原始的石墨烯nanoribbon (GNR),而GNR-k的最低极限应力低一个数量级的GNR。GNR-k间接证明是主要是派生的从平面外弯曲变形测量的非线性力学性能纸剪纸艺术。洞察的起源拉伸性的GNR-k GNR-k适用灵活的nanodevices。

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