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On the characterization of the elastic properties of asymmetric single-walled carbon nanotubes
Affiliation:1. Department of Structures and Civil Engineering, University Malaya, 50603 Kuala Lumpur, Malaysia;2. School of Engineering, Griffith University, Gold Coast Campus, Southport 4222, Australia;3. School of Engineering, The University of Newcastle, Callaghan, New South Wales 2308, Australia;1. High Pressure Physics Lab., Department of Physics, University of Rajasthan, Jaipur 302004, India;2. Mineral Physics Division, CSIR-National Geophysical Research Institute, Hyderabad 500007, India;3. Inorganic and Physical Chemistry Division, Indian Institute of Chemical Technology (CSIR), Hyderabad 500007, India;1. Mathematics, University of British Columbia, Kelowna, B.C. V1V 1V7, Canada;2. Department of Mathematics and Informatics, Hanoi National University of Education, 136 Xuan Thuy, Hanoi, Viet Nam;3. Mansoura University, Faculty of Science, Mathematics Department, Mansoura 35516, Egypt
Abstract:In order to characterize asymmetric single-walled carbon nanotubes, an algorithm has been developed based on numerical simulation to relate the physical geometry to the elastic properties of asymmetric single-walled carbon nanotubes (SWCNTs). A large number of finite element results for the stiffness of asymmetric SWCNTs has been used to develop a best surface fitting function to define the relationship between the geometry of SWCNTs and their stiffness. However, since the stiffness of asymmetric nanotubes depends upon the configuration parameters, n and m, it was impossible to define any diameter dependency. Based on the maximum reaction force concept and in order to account for the hidden mechanical behavior of asymmetric SWCNTs, the chiral factor (CF) has been employed in this study. The proposed CF converts any asymmetric geometry (n and m) into a value between 0 and 1. A group of the SWCNTs with the same applied boundary condition (n+m=30) and different range of the CF was also used for studying of the shear contribution. The chiral factor dependency, which is developed in this study, is applicable for characterising and selecting asymmetric SWCNTs in the design of advanced nanomaterials. Furthermore, the equation which is calculated in this study can be useful for finding the best criteria for selecting asymmetric SWCNTs.
Keywords:Nanostructures  Elastic properties  Mechanical properties
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