Nonvolatile and Neuromorphic Memory Devices Using Interfacial Traps in Two-Dimensional WSe2/MoTe2 Stack Channel
- Authors
- Park, Sam; Jeong, Yeonsu; Jin, Hye-Jin; Park, Junkyu; Jang, Hyenam; Lee, Sol; Huh, Woong; Cho, Hyunmin; Shin, Hyung Gon; Kim, Kwanpyo; Lee, Chul-Ho; Choi, Shinhyun; Im, Seongil
- Issue Date
- 22-9월-2020
- Publisher
- AMER CHEMICAL SOC
- Keywords
- stack channel FET; WSe2/MoTe2 heterojunction; interface traps; nonvolatile memory; neuromorphic device
- Citation
- ACS NANO, v.14, no.9, pp.12064 - 12071
- Indexed
- SCIE
SCOPUS
- Journal Title
- ACS NANO
- Volume
- 14
- Number
- 9
- Start Page
- 12064
- End Page
- 12071
- URI
- https://scholar.korea.ac.kr/handle/2021.sw.korea/53121
- DOI
- 10.1021/acsnano.0c05393
- ISSN
- 1936-0851
- Abstract
- Very recently, stacked two-dimensional materials have been studied, focusing on the van der Waals interaction at their stack junction interface. Here, we report field effect transistors (FETs) with stacked transition metal dichalcogenide (TMD) channels, where the heterojunction interface between two TMDs appears useful for nonvolatile or neuromorphic memory FETs. A few nanometer-thin WSe2 and MoTe2 flakes are vertically stacked on the gate dielectric, and bottom p-MoTe, performs as a channel for hole transport. Interestingly, the WSe2/MoTe2 stack interface functions as a hole trapping site where traps behave in a nonvolatile manner, although trapping/detrapping can be controlled by gate voltage (V-GS). Memory retention after high V-GS pulse appears longer than 10000 s, and the Program/Erase ratio in a drain current is higher than 200. Moreover, the traps are delicately controllable even with small V-GS, which indicates that a neuromorphic memory is also possible with our heterojunction stack FETs. Our stack channel FET demonstrates neuromorphic memory behavior of similar to 94% recognition accuracy.
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Collections - Graduate School > KU-KIST Graduate School of Converging Science and Technology > 1. Journal Articles
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