Characterization and Modification of Graphene-Based Interfacial Mechanical Behavior
This thesis shares new findings on the interfacial mechanics of graphene-based materials interacting with rigid/soft substrate and with one another. It presents an experimental platform including various loading modes that allow nanoscale deformation of atomically thin films, and a combination of atomic force microscopy (AFM) and Raman spectroscopy that allows both displacement and strain to be precisely measured at microscale. The thesis argues that the rich interfacial behaviors of graphene are dominated by weak van der Waals force, which can be effectively modulated using chemical strategies. The continuum theories are demonstrated to be applicable to nano-mechanics and can be used to predict key parameters such as shear/friction and adhesion. Addressing key interfacial mechanics issues, the findings in thesis not only offer quantitative insights in the novel features of friction and adhesion to be found only at nanoscale, but will also facilitate the deterministic design of high-performance graphene-based nanodevices and nanocomposites.

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Characterization and Modification of Graphene-Based Interfacial Mechanical Behavior
This thesis shares new findings on the interfacial mechanics of graphene-based materials interacting with rigid/soft substrate and with one another. It presents an experimental platform including various loading modes that allow nanoscale deformation of atomically thin films, and a combination of atomic force microscopy (AFM) and Raman spectroscopy that allows both displacement and strain to be precisely measured at microscale. The thesis argues that the rich interfacial behaviors of graphene are dominated by weak van der Waals force, which can be effectively modulated using chemical strategies. The continuum theories are demonstrated to be applicable to nano-mechanics and can be used to predict key parameters such as shear/friction and adhesion. Addressing key interfacial mechanics issues, the findings in thesis not only offer quantitative insights in the novel features of friction and adhesion to be found only at nanoscale, but will also facilitate the deterministic design of high-performance graphene-based nanodevices and nanocomposites.

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Characterization and Modification of Graphene-Based Interfacial Mechanical Behavior

Characterization and Modification of Graphene-Based Interfacial Mechanical Behavior

by Guorui Wang
Characterization and Modification of Graphene-Based Interfacial Mechanical Behavior

Characterization and Modification of Graphene-Based Interfacial Mechanical Behavior

by Guorui Wang

eBook1st ed. 2020 (1st ed. 2020)

$159.00 

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Overview

This thesis shares new findings on the interfacial mechanics of graphene-based materials interacting with rigid/soft substrate and with one another. It presents an experimental platform including various loading modes that allow nanoscale deformation of atomically thin films, and a combination of atomic force microscopy (AFM) and Raman spectroscopy that allows both displacement and strain to be precisely measured at microscale. The thesis argues that the rich interfacial behaviors of graphene are dominated by weak van der Waals force, which can be effectively modulated using chemical strategies. The continuum theories are demonstrated to be applicable to nano-mechanics and can be used to predict key parameters such as shear/friction and adhesion. Addressing key interfacial mechanics issues, the findings in thesis not only offer quantitative insights in the novel features of friction and adhesion to be found only at nanoscale, but will also facilitate the deterministic design of high-performance graphene-based nanodevices and nanocomposites.


Product Details

ISBN-13: 9789811580291
Publisher: Springer-Verlag New York, LLC
Publication date: 08/21/2020
Series: Springer Theses
Sold by: Barnes & Noble
Format: eBook
File size: 51 MB
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About the Author

Dr. Guorui Wang is currently working as a postdoctoral researcher at the Department of Mechanical and Industrial Engineering, University of Toronto, Canada. He received his Ph.D. from the University of Science and Technology of China (USTC), Hefei, while simultaneously studying as a joint student at the National Center for Nanoscience and Technology (NCNST), Beijing, China. His research interests are in the mechanical characterization of 2D materials and their deformation behaviors, governed by interfaces at nanoscale.

Table of Contents

Introduction.- Measuring Interfacial Properties of Graphene/polymethyl methacrylate (PMMA) through Uniaxial Tensile Test.- Mechanical Behavior at Graphene/polymethyl methacrylate (PMMA) Interface in Thermally Induced Biaxial Compression.- Measuring Interfacial Properties of Graphene/silicon by Pressurized Bulging Test.- Interfacial Mechanics between Graphene Layers.- Summary and Prospect.

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