DocumentCode
43098
Title
Analysis of Quantized Electrical Characteristics of Microscale TiO2 Ink-Jet Printed Memristor
Author
Samardzic, Natasa ; Mionic, Marijana ; Dakic, Bojan ; Hofmann, Heinrich ; Dautovic, Stanisa ; Stojanovic, Goran
Author_Institution
Dept. of ElectronicsFaculty of Tech. Sci., Univ. of Novi Sad, Novi Sad, Serbia
Volume
62
Issue
6
fYear
2015
fDate
Jun-15
Firstpage
1898
Lastpage
1904
Abstract
We demonstrate the ink-jet printed fabrication technique for TiO2-based memristor, followed by detailed analysis of electrical characteristics and development of a new model that considers observed phenomena of quantized conductance steps. The existence of pinched hysteretic current-voltage characteristics is evidence of memristive behavior, provided by the reversible atomic rearrangement taking place in the functional layer. For the first time, performed electrical measurement on the micrometer thickness devices based on TiO2 active layer has captured the plateaux steps of the conductance at integer multiples of elementary quantum conductance. This behavior is consistent with the assumption that transport from electrode to electrode emerges through confined paths of conductive filaments with radius in the nanometer size range. Moreover, we introduce a novel model, based on the diffusion equation for ballistic transport in memristive devices, which considers the conductance plateaux steps.
Keywords
ballistic transport; electric admittance; ink jet printing; memristors; titanium compounds; TiO2; ballistic transport; conductance plateaux steps; diffusion equation; electrode transport; micrometer thickness devices; microscale ink jet printed memristor; quantized conductance step; quantized electrical characteristics; Electrodes; Indium tin oxide; Ink jet printing; Mathematical model; Memristors; Resistance; Switches; Ink-jet printing; memristor; quantized conductance; quantized conductance.;
fLanguage
English
Journal_Title
Electron Devices, IEEE Transactions on
Publisher
ieee
ISSN
0018-9383
Type
jour
DOI
10.1109/TED.2015.2421283
Filename
7094244
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