We report the mechanical behavior of vertically aligned carbon nanotube films, grown on Si substrates using atmospheric pressure chemical vapor deposition, subjected to in situ large displacement (up to 70 μm) flat-punch indentations. We observed three distinct regimes in their indentation stress–strain curves: (i) a short elastic regime, followed by (ii) a sudden instability, which resulted in a substantial rapid displacement burst manifested by an instantaneous vertical shearing of the material directly underneath the indenter tip by as much as 30 μm, and (iii) a positively sloped plateau for displacements between 10 and 70 μm. In situ nanomechanical indentation experiments revealed that the shear strain was accommodated by an array of co...
We report mechanical behavior and strain rate dependence of recoverability and energy dissipation in...
We present a one-dimensional, multiscale mass-spring model to describe the response of vertically al...
We carry out axisymmetric, finite deformation finite element analyses of the uniaxial compression of...
We report the mechanical behavior of vertically aligned carbon nanotube films, grown on Si substrate...
This study reports the mechanical response of distinct carbon nanotube (CNT) morphologies as reveal...
Abstract Mechanical properties and deformation of the vertically aligned carbon nanotube arrays (VA-...
Micromechanical experiments, image analysis, and theoretical modeling revealed that local failure ev...
Thesis (S.B.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2004.Includes...
Strain rate effects on the mechanical properties of carbon nanotube forests are studied, and several...
Thesis (S.M.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2005.Includes...
Vertically aligned carbon nanotube’s extreme compliance and mechanical energy absorption/dissipation...
Vertically aligned carbon nanotubes (VACNTs) serve as integral components in a variety of applicatio...
Motivated by a model that qualitatively captured the response of vertically aligned carbon nanotube ...
The reported study was funded by RFBR according to the research projects No.16-29-14023 ofi_m, No.18...
We report mechanical behavior and strain rate dependence of recoverability and energy dissipation in...
We report mechanical behavior and strain rate dependence of recoverability and energy dissipation in...
We present a one-dimensional, multiscale mass-spring model to describe the response of vertically al...
We carry out axisymmetric, finite deformation finite element analyses of the uniaxial compression of...
We report the mechanical behavior of vertically aligned carbon nanotube films, grown on Si substrate...
This study reports the mechanical response of distinct carbon nanotube (CNT) morphologies as reveal...
Abstract Mechanical properties and deformation of the vertically aligned carbon nanotube arrays (VA-...
Micromechanical experiments, image analysis, and theoretical modeling revealed that local failure ev...
Thesis (S.B.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2004.Includes...
Strain rate effects on the mechanical properties of carbon nanotube forests are studied, and several...
Thesis (S.M.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2005.Includes...
Vertically aligned carbon nanotube’s extreme compliance and mechanical energy absorption/dissipation...
Vertically aligned carbon nanotubes (VACNTs) serve as integral components in a variety of applicatio...
Motivated by a model that qualitatively captured the response of vertically aligned carbon nanotube ...
The reported study was funded by RFBR according to the research projects No.16-29-14023 ofi_m, No.18...
We report mechanical behavior and strain rate dependence of recoverability and energy dissipation in...
We report mechanical behavior and strain rate dependence of recoverability and energy dissipation in...
We present a one-dimensional, multiscale mass-spring model to describe the response of vertically al...
We carry out axisymmetric, finite deformation finite element analyses of the uniaxial compression of...