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Cited 7 time in webofscience Cited 7 time in scopus
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Dependence of InGaZnO and SnO2 thin film stacking sequence for the resistive switching characteristics of conductive bridge memory devices

Authors
Ali, AsifAbbas, YawarAbbas, HaiderJeon, Yu-RimHussain, SajjadNaqvi, Bilal AbbasChoi, ChanghwanJung, Jongwan
Issue Date
Sep-2020
Publisher
ELSEVIER
Keywords
Resistive switching; CBRAM; ReRAM; Hybrid oxides; Unipolar switching; Bipolar switching
Citation
APPLIED SURFACE SCIENCE, v.525, pp.1 - 8
Indexed
SCIE
SCOPUS
Journal Title
APPLIED SURFACE SCIENCE
Volume
525
Start Page
1
End Page
8
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/1778
DOI
10.1016/j.apsusc.2020.146390
ISSN
0169-4332
Abstract
We have investigated the switching mechanism of conductive bridge random access memory (CBRAM) with Ag/SnO2/Pt, Ag/InGaZnO(IGZO)/Pt and their hybrid oxide devices with different stacking sequence (Ag/SnO2/IGZO/Pt and Ag/IGZO/SnO2/Pt). Typical bipolar resistive switching is observed in single layered devices and an Ag/SnO2/IGZO/Pt hybrid device. Interestingly, a stable and reproducible unipolar resistive switching is observed for a hybrid device with a stacking sequence of Ag/IGZO/SnO2/Pt. This result suggests that the staking sequence of dielectrics in the IGZO and SnO2 electrolyte determines unipolar or bipolar switching. The different switching types in the hybrid electrolyte are based on different migration or diffusion rates of Ag ions in the solid electrolyte and redox reaction rates at the electrodes. And as compared to single layered devices, the hybrid structured devices exhibit low operation voltages, higher I-ON/I-OFF ratio, uniform switching cycles and better endurance and retention characteristics. The results and switching mechanisms demonstrated here in hybrid devices can be extended to other hybrid devices based on CBRAM device.
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