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Carbon nanotube (CNT) yarns were evaluated for sensor applications by measuring electrical properties during uniaxial tension loading.
In addition, η′ and η precipitates were observed to be primarily responsible for the increase in the mechanical and electrical properties during the room-temperature natural aging.
We performed complex resistivity (CR) measurements in conjunction with geochemical data analysis on three microbial-stimulated and two control columns to investigate changes in electrical properties during EtOH biodegradation processes in porous media.
The electrical properties during electrochemical doping of the PBDTTT-c were investigated using electrochemical impedance spectroscopy.
The onset of hysteresis in electrical properties during initial mechanical deformation is concurrent with structural changes originating from fiber rearrangement.
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Changes in morphology and electrical property during CNT formation and nano-soldering were probed in real time with high resolution TEM.
To analyze the electrical properties of bone during callus maturation, we measured bone resistivity for each group under intravenous anesthesia with pentobarbital, after removing the surrounding soft tissue including periosteum.
Measurement of the overall impedance of distraction callus allows any changes in electrical properties to be evaluated during the callus maturation process.
By some as-yet-unknown mechanism, the change in the electrical properties of the transverse tubules during an action potential causes the rapid release by the terminal cisternae of relatively large amounts of calcium ions into the sarcoplasm.
Metallic nanoparticles with the unique optical and electrical properties have been widely investigated during the past decades.
This suggests that the electrical properties of NdFeB alloys are enhanced during Grain Boundary Engineering™ (GBE™).
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