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In Situ Transmission Electron Microscopy with Biasing and Fabrication of Asymmetric Crossbars Based on Mixed-Phased a-VOx
Published on: May 13, 2020
Resistive Switching and Space-Charge-Limited Transport in Ag/α-Phase Patterned PVDF/Ag Devices Fabricated by Soft
Ravisankar Muthuvel Sundaram1, Bencha Thongnuanchan1, Chatchai Putson2
1Department of Rubber Technology and Polymer Science, Faculty of Science and Technology, Prince of Songkla University, Pattani Campus, Pattani 94000, Thailand.
Abstract:
This research work explores the resistive switching behavior and the impact of geometric confinement on charge transport mechanisms of Ag/α-phase patterned Polyvinylidene fluoride (PVDF)/Ag and Ag/α-phase unpatterned PVDF/Ag devices. Uniform line and groove (L/G) patterns on a PVDF thin film were imprinted using the soft imprint lithography (SIL) technique, followed by the deposition of a silver (Ag) electrode via DC magnetron sputtering. Structural and surface characterizations were performed using confocal Raman spectroscopy, X-ray diffraction, and atomic force microscopy. The Ag/α-phase patterned PVDF/Ag devices exhibited multiple transitions at set voltages (34.2 V, 37.9 V and 49.6 V in forward bias; -12.0 V and -15.6 V in reverse bias) and reset voltages (-27.5 V and -46.3 V in reverse bias; 50.0 V in forward bias) across different junctions than the unpatterned devices. Current-voltage (I-V) characteristics revealed Ohmic conductivity at low fields, trap-filled space-charge-limited current (SCLC) at medium fields, and a transition to free-trap regimes at high fields, consistent with Geurst's trapped-SCLC model. These findings emphasize the potential benefits of α-phase PVDF thin films with L/G structure by the SIL technique for resistive memory and flexible electronic applications.

