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Gate-controlled neuromorphic functional transition in an electrochemical graphene transistor
by
Wang, Yayu
, Gao, Zhiting
, Jiang, Kaili
, Li, Shaorui
, Zhou, Siyi
, Liu, Yanming
, He, Tian
, Yu, Chenglin
, Pan, Zhoujie
, Wang, Yongchao
, Zhang, Jinsong
in
Artificial intelligence
/ Artificial neural networks
/ Chemical reactions
/ Electric potential
/ Electrical resistivity
/ Graphene
/ Hydrogen ions
/ Machine learning
/ Neural networks
/ Neuromorphic computing
/ Neurons
/ Synapses
/ Transistors
/ Voltage
2023
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Gate-controlled neuromorphic functional transition in an electrochemical graphene transistor
by
Wang, Yayu
, Gao, Zhiting
, Jiang, Kaili
, Li, Shaorui
, Zhou, Siyi
, Liu, Yanming
, He, Tian
, Yu, Chenglin
, Pan, Zhoujie
, Wang, Yongchao
, Zhang, Jinsong
in
Artificial intelligence
/ Artificial neural networks
/ Chemical reactions
/ Electric potential
/ Electrical resistivity
/ Graphene
/ Hydrogen ions
/ Machine learning
/ Neural networks
/ Neuromorphic computing
/ Neurons
/ Synapses
/ Transistors
/ Voltage
2023
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Gate-controlled neuromorphic functional transition in an electrochemical graphene transistor
by
Wang, Yayu
, Gao, Zhiting
, Jiang, Kaili
, Li, Shaorui
, Zhou, Siyi
, Liu, Yanming
, He, Tian
, Yu, Chenglin
, Pan, Zhoujie
, Wang, Yongchao
, Zhang, Jinsong
in
Artificial intelligence
/ Artificial neural networks
/ Chemical reactions
/ Electric potential
/ Electrical resistivity
/ Graphene
/ Hydrogen ions
/ Machine learning
/ Neural networks
/ Neuromorphic computing
/ Neurons
/ Synapses
/ Transistors
/ Voltage
2023
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Gate-controlled neuromorphic functional transition in an electrochemical graphene transistor
Paper
Gate-controlled neuromorphic functional transition in an electrochemical graphene transistor
2023
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Overview
Neuromorphic devices have gained significant attention as potential building blocks for the next generation of computing technologies owing to their ability to emulate the functionalities of biological nervous systems. The essential components in artificial neural network such as synapses and neurons are predominantly implemented by dedicated devices with specific functionalities. In this work, we present a gate-controlled transition of neuromorphic functions between artificial neurons and synapses in monolayer graphene transistors that can be employed as memtransistors or synaptic transistors as required. By harnessing the reliability of reversible electrochemical reactions between C atoms and hydrogen ions, the electric conductivity of graphene transistors can be effectively manipulated, resulting in high on/off resistance ratio, well-defined set/reset voltage, and prolonged retention time. Overall, the on-demand switching of neuromorphic functions in a single graphene transistor provides a promising opportunity to develop adaptive neural networks for the upcoming era of artificial intelligence and machine learning.
Publisher
Cornell University Library, arXiv.org
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