Measuring Interlayer Shear Stress in Bilayer Graphene

Guorui Wang(National Center for Nanoscience and Technology), Zhaohe Dai(The University of Texas at Austin), Yanlei Wang(Tsinghua University), Ping‐Heng Tan(Chinese Academy of Sciences), Luqi Liu(National Center for Nanoscience and Technology), Zhiping Xu(Tsinghua University), Yueguang Wei(Institute of Mechanics), Rui Huang(The University of Texas at Austin), Zhong Zhang(National Center for Nanoscience and Technology)
Physical Review Letters
July 17, 2017
Cited by 268Open Access
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Abstract

<p>\n\tMonolayer two-dimensional (2D) crystals exhibit a host of intriguing properties, but the most exciting applications may come from stacking them into multilayer structures. Interlayer and interfacial shear interactions could play a crucial role in the performance and reliability of these applications, but little is known about the key parameters controlling shear deformation across the layers and interfaces between 2D materials. Herein, we report the first measurement of the interlayer shear stress of bilayer graphene based on pressurized microscale bubble loading devices. We demonstrate continuous growth of an interlayer shear zone outside the bubble edge and extract an interlayer shear stress of 40 kPa based on a membrane analysis for bilayer graphene bubbles. Meanwhile, a much higher interfacial shear stress of 1.64 MPa was determined for monolayer graphene on a silicon oxide substrate. Our results not only provide insights into the interfacial shear responses of the thinnest structures possible, but also establish an experimental method for characterizing the fundamental interlayer shear properties of the emerging 2D materials for potential applications in multilayer systems.</p>


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