The temperature-dependent transverse mechanical properties of single-walled nanotubes are studied using a molecular mechanics approach. The stretching and bond angle force constants describing the mechanical behavior of the sp2 bonds are resolved in the temperature range between 0 and 1600 K, allowing to identify a temperature dependence of the nanotubes wall thickness. We observe a decrease of the stiffness properties (axial and shear Young’s modulus) with increasing temperatures, and an augmentation of the transverse Poisson’s ratio, with magnitudes depending on the chirality of the nanotube. Our closed-form predictions compare well with existing molecular dynamics simulations
Various mechanical properties of single-walled carbon nanotubes (SWCNT) and double-walled carbon nan...
In this article, mechanical properties of single-walled carbon nanotubes (SWCNTs) with various radiu...
An energy-equivalent model is employed to develop the mechanical properties of singled-walled carbon...
Presented herein is an investigation into the stretching and fracture behavior of single-walled carb...
Single-walled carbon nanotubes, with stiffness of 1.0 TPa and strength of 60 GPa, are a natural choi...
Single-walled carbon nanotubes, with stiffness of 1.0 TPa and strength of 60 GPa, are a natural choi...
The mechanical characteristics of single-walled carbon nanotubes (SWCNTs) with an axial curvature of...
Measurement of all the mechanical properties of carbon nanotubes is extremely difficult because of i...
Finite element analysis has been carried out to obtain temperature dependent transversely isotropic ...
We report the first study on the thermal behavior of the stiffness of individual carbon nanotubes, w...
This paper investigates the effects of length's variations on Young's modulus, compressive elastic m...
Results of molecular-mechanics simulations of axial and torsional deformations of a single wall carb...
Molecular mechanics based finite element analysis is adopted in the current work to evaluate the mec...
Carbon nanotubes are superior materials for thermal management and phononic device use due to their ...
We utilize classical molecular dynamics to study energy dissipation (the Q-factors) of carbon nanotu...
Various mechanical properties of single-walled carbon nanotubes (SWCNT) and double-walled carbon nan...
In this article, mechanical properties of single-walled carbon nanotubes (SWCNTs) with various radiu...
An energy-equivalent model is employed to develop the mechanical properties of singled-walled carbon...
Presented herein is an investigation into the stretching and fracture behavior of single-walled carb...
Single-walled carbon nanotubes, with stiffness of 1.0 TPa and strength of 60 GPa, are a natural choi...
Single-walled carbon nanotubes, with stiffness of 1.0 TPa and strength of 60 GPa, are a natural choi...
The mechanical characteristics of single-walled carbon nanotubes (SWCNTs) with an axial curvature of...
Measurement of all the mechanical properties of carbon nanotubes is extremely difficult because of i...
Finite element analysis has been carried out to obtain temperature dependent transversely isotropic ...
We report the first study on the thermal behavior of the stiffness of individual carbon nanotubes, w...
This paper investigates the effects of length's variations on Young's modulus, compressive elastic m...
Results of molecular-mechanics simulations of axial and torsional deformations of a single wall carb...
Molecular mechanics based finite element analysis is adopted in the current work to evaluate the mec...
Carbon nanotubes are superior materials for thermal management and phononic device use due to their ...
We utilize classical molecular dynamics to study energy dissipation (the Q-factors) of carbon nanotu...
Various mechanical properties of single-walled carbon nanotubes (SWCNT) and double-walled carbon nan...
In this article, mechanical properties of single-walled carbon nanotubes (SWCNTs) with various radiu...
An energy-equivalent model is employed to develop the mechanical properties of singled-walled carbon...