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Ferroelectric 2D SnS2 Analog Synaptic FET

Title
Ferroelectric 2D SnS2 Analog Synaptic FET
Author(s)
Song, Chong-MyeongKim, DonghaLee, ShinbuhmKwon, Hyuk-Jun
Issued Date
ACCEPT
Citation
Advanced Science
Type
Article
Author Keywords
ferroelectricsfield-effect transistorsynaptic devicetin disulfide (SnS2)
Keywords
PLASTICITYMEMORY
ISSN
2198-3844
Abstract
In this study, the development and characterization of 2D ferroelectric field-effect transistor (2D FeFET) devices are presented, utilizing nanoscale ferroelectric HfZrO2 (HZO) and 2D semiconductors. The fabricated device demonstrated multi-level data storage capabilities. It successfully emulated essential biological characteristics, including excitatory/inhibitory postsynaptic currents (EPSC/IPSC), Pair-Pulse Facilitation (PPF), and Spike-Timing Dependent Plasticity (STDP). Extensive endurance tests ensured robust stability (107 switching cycles, 105 s (extrapolated to 10 years)), excellent linearity, and high Gmax/Gmin ratio (>105), all of which are essential for realizing multi-level data states (>7-bit operation). Beyond mimicking synaptic functionalities, the device achieved a pattern recognition accuracy of ≈94% on the Modified National Institute of Standards and Technology (MNIST) handwritten dataset when incorporated into a neural network, demonstrating its potential as an effective component in neuromorphic systems. The successful implementation of the 2D FeFET device paves the way for the development of high-efficiency, ultralow-power neuromorphic hardware which is in sub-femtojoule (48 aJ/spike) and fast response (1 µs), which is 104 folds faster than human synapse (≈10ms). The results of the research underline the potential of nanoscale ferroelectric and 2D materials in building the next generation of artificial intelligence technologies. © 2024 The Authors. Advanced Science published by Wiley-VCH GmbH. This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
URI
http://hdl.handle.net/20.500.11750/56562
DOI
10.1002/advs.202308588
Publisher
Wiley
Related Researcher
  • 이신범 Lee, Shinbuhm
  • Research Interests Multifunctional films; Experimental condensed matter physics
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Appears in Collections:
Department of Electrical Engineering and Computer Science Advanced Electronic Devices Research Group(AEDRG) - Kwon Lab. 1. Journal Articles
Department of Physics and Chemistry Multifunctional films and nanostructures Lab 1. Journal Articles

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