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单层石墨烯弹性特性和本征强度的测量。

Measurement of the elastic properties and intrinsic strength of monolayer graphene.

作者信息

Lee Changgu, Wei Xiaoding, Kysar Jeffrey W, Hone James

机构信息

Department of Mechanical Engineering, Columbia University, New York, NY 10027, USA.

出版信息

Science. 2008 Jul 18;321(5887):385-8. doi: 10.1126/science.1157996.

Abstract

We measured the elastic properties and intrinsic breaking strength of free-standing monolayer graphene membranes by nanoindentation in an atomic force microscope. The force-displacement behavior is interpreted within a framework of nonlinear elastic stress-strain response, and yields second- and third-order elastic stiffnesses of 340 newtons per meter (N m(-1)) and -690 Nm(-1), respectively. The breaking strength is 42 N m(-1) and represents the intrinsic strength of a defect-free sheet. These quantities correspond to a Young's modulus of E = 1.0 terapascals, third-order elastic stiffness of D = -2.0 terapascals, and intrinsic strength of sigma(int) = 130 gigapascals for bulk graphite. These experiments establish graphene as the strongest material ever measured, and show that atomically perfect nanoscale materials can be mechanically tested to deformations well beyond the linear regime.

摘要

我们通过原子力显微镜中的纳米压痕测量了独立单层石墨烯膜的弹性特性和固有断裂强度。力-位移行为在非线性弹性应力-应变响应框架内进行解释,分别得出二阶和三阶弹性刚度为340牛顿每米(N m⁻¹)和 -690 Nm⁻¹。断裂强度为42 N m⁻¹,代表无缺陷薄片的固有强度。这些量对应于块状石墨的杨氏模量E = 1.0太帕斯卡、三阶弹性刚度D = -2.0太帕斯卡以及固有强度σ(int) = 130吉帕斯卡。这些实验确立了石墨烯为有史以来测量到的最强材料,并表明原子级完美的纳米材料可以进行机械测试,使其变形远超线性范围。

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