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Photonic Potentiation and Electric Habituation in Ultrathin Memristive Synapses Based on Monolayer MoS 2
Author(s) -
He HuiKai,
Yang Rui,
Zhou Wen,
Huang HeMing,
Xiong Jue,
Gan Lin,
Zhai TianYou,
Guo Xin
Publication year - 2018
Publication title -
small
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 3.785
H-Index - 236
eISSN - 1613-6829
pISSN - 1613-6810
DOI - 10.1002/smll.201800079
Subject(s) - neuromorphic engineering , materials science , photonics , optoelectronics , long term potentiation , monolayer , nanotechnology , neural facilitation , habituation , computer science , neuroscience , chemistry , biochemistry , receptor , machine learning , artificial neural network , biology
Monolayer of 2D transition metal dichalcogenides, with a thickness of less than 1 nm, paves a feasible path to the development of ultrathin memristive synapses, to fulfill the requirements for constructing large‐scale high density 3D stacking neuromorphic chips. Herein, memristive devices based on monolayer n‐MoS 2 on p‐Si substrate with a large self‐rectification ratio, exhibiting photonic potentiation and electric habituation, are successfully fabricated. Versatile synaptic neuromorphic functions, such as potentiation/habituation, short‐term/long‐term plasticity, and paired‐pulse facilitation, are successfully mimicked based on the inherent persistent photoconductivity performance and the volatile resistive switching behavior. These findings demonstrate the potential applications of ultrathin transition metal dichalcogenides for memristive synapses. These memristive synapses with the combination of photonic and electric neuromorphic functions have prospective in the applications of synthetic retinas and optoelectronic interfaces for integrated photonic circuits based on mixed‐mode electro‐optical operation.

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