Abstract MEMS-based tensile testing devices are powerful tools for mechanical characterization of nanoscale materials. In a typical configuration, their design includes an actuator to deliver loads/displace-ments to a sample, and a sensing unit for load measurement. The sensing unit consists of a flexible structure, which deforms in response to the force imposed to the sample. Such deformation, while being necessary for the sensing function, may become a source of instability. When the sample experiences a load drop, as it may result from yield, necking or phase transitions, the elastic energy accumulated by the sensor can be released, thus leading to loss of the displacement-controlled condition and dynamic fail-ure. Here, we report a newl...
Characterizing the fatigue and fracture properties of nanostructures is one of the most challenging ...
The measurement of the mechanical properties of materials with submicrometer dimensions is extremely...
Characterizing the fatigue and fracture properties of nanostructures is one of the most challenging ...
We have developed and tested the world’s smallest material testing system for the in situ mechanical...
The need to characterize nanometer-scale materials and structures has grown tremendously in the past...
Abstract—In situ mechanical characterization of nanostruc-tures, such as carbon nanotubes and metall...
In this work, we designed a micro-electromechanical systems (MEMS) device that allows simultaneous d...
In this work, we designed a micro-electromechanical systems (MEMS) device that allows simultaneous d...
The measurement of the mechanical properties of submicron sized specimens is extremely challenging d...
The measurement of the mechanical properties of submicron sized specimens is extremely challenging d...
In situ electron microscopy tensile tests of nanowires and carbon nanotubes performed using a MEMS-b...
The mechanical testing of micro-electro-mechanical systems (MEMS) and nano-electro-mechanical system...
With the advent of microtechnology over the last few decades, designs for new and innovative microsc...
The fi eld of in situ nanomechanics is greatly benefi ting from microelectromechanical systems (MEMS...
This paper presents a MEMS/NEMS device for fatigue and fracture characterization of nanomaterials. T...
Characterizing the fatigue and fracture properties of nanostructures is one of the most challenging ...
The measurement of the mechanical properties of materials with submicrometer dimensions is extremely...
Characterizing the fatigue and fracture properties of nanostructures is one of the most challenging ...
We have developed and tested the world’s smallest material testing system for the in situ mechanical...
The need to characterize nanometer-scale materials and structures has grown tremendously in the past...
Abstract—In situ mechanical characterization of nanostruc-tures, such as carbon nanotubes and metall...
In this work, we designed a micro-electromechanical systems (MEMS) device that allows simultaneous d...
In this work, we designed a micro-electromechanical systems (MEMS) device that allows simultaneous d...
The measurement of the mechanical properties of submicron sized specimens is extremely challenging d...
The measurement of the mechanical properties of submicron sized specimens is extremely challenging d...
In situ electron microscopy tensile tests of nanowires and carbon nanotubes performed using a MEMS-b...
The mechanical testing of micro-electro-mechanical systems (MEMS) and nano-electro-mechanical system...
With the advent of microtechnology over the last few decades, designs for new and innovative microsc...
The fi eld of in situ nanomechanics is greatly benefi ting from microelectromechanical systems (MEMS...
This paper presents a MEMS/NEMS device for fatigue and fracture characterization of nanomaterials. T...
Characterizing the fatigue and fracture properties of nanostructures is one of the most challenging ...
The measurement of the mechanical properties of materials with submicrometer dimensions is extremely...
Characterizing the fatigue and fracture properties of nanostructures is one of the most challenging ...