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At high frequencies transient electrical behavior is strongly influenced by parasitic line capacitance and inductance.
Their electrical behavior is analyzed and compared to reference samples (regular process using High-Temperature junction formation, HT).
A set-up for analysing sensor responsivity in air and water has been used and its electrical behavior is reported.
The analysis of thermal and electrical behavior is supported by effective 3-D electrothermal device simulation method developed for Synopsys TCAD Sentaurus environment using mixed-mode setup.
This unexpected electrical behavior is attributed to the structural modification of the carbon skeleton forming the porous material during the etching process.
We find that the devices efficiency has a maximum for a certain MWNT concentration and that the electrical behavior is mainly dependent on the charge transport properties of the MWNT.
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The electrical behavior was studied while varying the N2 concentration.
A characteristic electrical behavior was observed for a straight-electrode configuration.
Microstructural contributions of the overall electrical behavior were de-convoluted by electrochemical impedance spectroscopy.
Electrical behavior was studied employing impedance spectroscopy, thermoelectric analysis and charging current analysis, showing that the incorporation of water actually determines the main electrical features of the system.
The design of the termination region is achieved with two different optimization techniques, and both static and dynamic electrical behavior are analyzed by means of 2D TCAD simulations, up to high current density levels.
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