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Heterostructure carbon-packed MoSSe nanospheres for flexible ReRAM and synapse devices

Authors
Rani, AdilaKhot, Atul C.Jang, Il GyuKim, Tae Geun
Issue Date
15-4월-2022
Publisher
PERGAMON-ELSEVIER SCIENCE LTD
Keywords
Heterostructure; Carbon-packed (C@MoSSe); Nanospheres; Resistive switching; Memristic effect; Synaptic effect
Citation
CARBON, v.189, pp.104 - 112
Indexed
SCIE
SCOPUS
Journal Title
CARBON
Volume
189
Start Page
104
End Page
112
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/140071
DOI
10.1016/j.carbon.2021.12.057
ISSN
0008-6223
Abstract
This paper reports on the synthesis of vacancy-assisted carbon-packed MoSSe (C@MoSSe) nanospheres and their use in memristor and neuromorphic devices. The heterostructure C@MoSSe nanospheres were fabricated using simple hydrothermal and sonication methods to synthesize large-scale, uniform C@MoSSe films on flexible substrates. The carbon skeleton, tightly adhered to the heterostructure MoSSe nanospheres, helped assign low sp(2) characteristics to the vacancies on the defective surfaces of the MoSSe nanospheres, thereby facilitating the realization of highly stable memristor and neuromorphic performance. In addition, the defects in the crystal lattice of the pure phase of MoSSe increased the band gap (around 4.39 eV) to be larger than the bulk and Janus structure of MoSSe (1.2 and 1.9 eV, respectively), resulting in carrier transport owing to trap filling. The C@MoSSe-based memristor successfully mimicked the basic and complex properties of synaptic plasticity, with a critical time window of around 460 mu s, lower than that of the human brain. Bipolar memory performance, such as a high on/off current ratio, a reasonably low operating voltage, and stability, depended on the thickness of the C@MoSSe layers. The findings demonstrate the application potential of C@MoSSe-based memristors and can promote the realization of large-scale neuromorphic circuits. (C) 2021 Elsevier Ltd. All rights reserved.
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