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Energy-Efficient; Scalable Single-Layer MoS2–Based Synaptic Field-Effect Transistors

delete2025-06-30
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PRE
AI
J
Jiman Kim
B
Byeongju Kim
J
Jiwon Ma
S
Sang-Yun Lim
M
Myeong-Hwan Choi
H
Hyeonu Jeong
J
Jaehoon Ji
J
Ji‐Hoon Kang
J
Jiwon Chang *
J
Jiseok Kwon *
T
Tae Joon Park *
DOI:10.1021/acsaelm.5c00808delete
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Abstract

Abstract

En 中文
Neuromorphic computing has emerged as a promising strategy for overcoming the von Neumann bottleneck by enabling energy-efficient parallel information processing. To realize such systems, it is crucial to develop artificial synaptic devices that are both energy-efficient and highly scalable. In this study, we present a single-layer MoS2-based synaptic field-effect transistor (FET) with a high-κ top-gate dielectric stack for low-power, nonvolatile synaptic operations. The absence of a blocking layer simplifies the fabrication process while maintaining reliable memory characteristics. Synaptic weights are effectively modulated through the trapping and detrapping of electrons within a HfO2 layer. The device exhibited stable long-term potentiation (LTP) and depression (LTD) with excellent endurance and reproducibility. Furthermore, the experimentally measured synaptic characteristics were implemented in a software-based deep neural network, achieving a recognition accuracy of 95.9% on the MNIST handwritten digit classification task. These findings highlight the potential of single-layer MoS2 synaptic transistors as scalable energy-efficient neuromorphic building blocks.

Journal

ACS Applied Electronic Materials cover
ACS Applied Electronic Materials
IF:
4.7
Papers:
5.0K
Citations:
1.4W

Organization

T
the catholic university of korea
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Papers: 569
Citations: 0
P
Princeton University
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2.1W
Papers: 2.3W
Citations: 5.1W
K
kookmin university
Scholars:
3.0K
Papers: 3.3K
Citations: 2
I
Inha University
Scholars:
1.1W
Papers: 1.1W
Citations: 1.1W
Y
Yonsei University
Scholars:
4.8W
Papers: 4.6W
Citations: 5.2W
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