In this paper, we present our results of experimental and numerical pull-out tests on carbon nanotubes (CNTs) embedded in palladium. We prepared simple specimens by employing standard silicon wafers, physical vapor deposition of palladium and deposition of CNTs with a simple drop coating technique. An AFM cantilever with known stiffness connected to a nanomanipulation system was utilized inside a scanning electron microscope (SEM) as a force sensor to determine forces acting on a CNT during the pull-out process. SEM-images of the cantilever attached to a CNT have been evaluated for subsequent displacement steps with greyscale correlation to determine the cantilever deflection. We compare the experimentally obtained pull-out forces with valu...
In this work, a study of the possibilities of the Scanning Force Microscope (SFM) for studying trans...
A popular technique for characterizing the mechanical properties of carbon nanotubes is to apply a o...
Carbon nanotubes are novel materials with unique electrical and mechanical properties. Here we prese...
In this paper we present results of our recent efforts to understand the mechanical interface behavi...
AbstractWe present force-displacement data simulated with molecular dynamics of quasi-static displac...
In this paper we present results of our recent efforts to understand the mechanical interface behavi...
This paper presents an in situ pull-out test device to characterize interfaces between single-walled...
In this paper we present our recent efforts to develop an in situ tensile test device for thermo-mec...
Carbon nanotubes (CNTs) possess unique electrical, thermal, and mechanical properties which have led...
[[abstract]]A real-time and non-contact method using scanning electron microscopy is demonstrated fo...
CNT/metal interfaces under mechanical loads are investigated using molecular dynamics by simulating ...
In this paper we present our results of simulating a pull-out test of single walled carbon nanotubes...
The mechanics of a filled carbon nanotube has been evaluated inside a transmission electron microsco...
Vor dem Hintergrund zukünftiger Sensoren, basierend auf dem piezoresistiven Effekt von einwandigen K...
ABSTRACT: The mechanical behavior of carbon nanotube (CNT)-based fibers and nanocomposites depends i...
In this work, a study of the possibilities of the Scanning Force Microscope (SFM) for studying trans...
A popular technique for characterizing the mechanical properties of carbon nanotubes is to apply a o...
Carbon nanotubes are novel materials with unique electrical and mechanical properties. Here we prese...
In this paper we present results of our recent efforts to understand the mechanical interface behavi...
AbstractWe present force-displacement data simulated with molecular dynamics of quasi-static displac...
In this paper we present results of our recent efforts to understand the mechanical interface behavi...
This paper presents an in situ pull-out test device to characterize interfaces between single-walled...
In this paper we present our recent efforts to develop an in situ tensile test device for thermo-mec...
Carbon nanotubes (CNTs) possess unique electrical, thermal, and mechanical properties which have led...
[[abstract]]A real-time and non-contact method using scanning electron microscopy is demonstrated fo...
CNT/metal interfaces under mechanical loads are investigated using molecular dynamics by simulating ...
In this paper we present our results of simulating a pull-out test of single walled carbon nanotubes...
The mechanics of a filled carbon nanotube has been evaluated inside a transmission electron microsco...
Vor dem Hintergrund zukünftiger Sensoren, basierend auf dem piezoresistiven Effekt von einwandigen K...
ABSTRACT: The mechanical behavior of carbon nanotube (CNT)-based fibers and nanocomposites depends i...
In this work, a study of the possibilities of the Scanning Force Microscope (SFM) for studying trans...
A popular technique for characterizing the mechanical properties of carbon nanotubes is to apply a o...
Carbon nanotubes are novel materials with unique electrical and mechanical properties. Here we prese...