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High-Performance Memristive Synapse Based on Space-Charge-Limited Conduction in LiNbO3open access

Authors
Lee, YoungminLee, Sejoon
Issue Date
Dec-2024
Publisher
MDPI
Keywords
LiNbO3; oxygen vacancy migration; memristive effect; electronic synapse
Citation
Nanomaterials, v.14, no.23, pp 1 - 18
Pages
18
Indexed
SCIE
SCOPUS
Journal Title
Nanomaterials
Volume
14
Number
23
Start Page
1
End Page
18
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/56452
DOI
10.3390/nano14231884
ISSN
2079-4991
2079-4991
Abstract
Advancing neuromorphic computing technology requires the development of versatile synaptic devices. In this study, we fabricated a high-performance Al/LiNbO3/Pt memristive synapse and emulated various synaptic functions using its primary key operating mechanism, known as oxygen vacancy-mediated valence charge migration (V-O-VCM). The voltage-controlled V-O-VCM induced space-charge-limited conduction and self-rectifying asymmetric hysteresis behaviors. Moreover, the device exhibited voltage pulse-tunable multi-state memory characteristics because the degree of V-O-VCM was dependent on the applied pulse parameters (e.g., polarity, amplitude, width, and interval). As a result, synaptic functions such as short-term memory, dynamic range-tunable long-term memory, and spike time-dependent synaptic plasticity were successfully demonstrated by modulating those pulse parameters. Additionally, simulation studies on hand-written image pattern recognition confirmed that the present device performed with high accuracy, reaching up to 95.2%. The findings suggest that the V-O-VCM-based Al/LiNbO3/Pt memristive synapse holds significant promise as a brain-inspired neuromorphic device.
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