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Low Energy and Analog Memristor Enabled by Regulation of Ru ion Motion for High Precision Neuromorphic Computing

Authors
Kim, Ji EunKwon, Jae UkChun, Suk YeopSong, Young GeunJeong, Doo SeokKang, Chong-YunKim, Seong KeunNahm, SahnYoon, Jung Ho
Issue Date
10월-2022
Publisher
WILEY
Keywords
analog switching; conductance modulation; crystallinity-dependent; low currents; memristors
Citation
ADVANCED ELECTRONIC MATERIALS, v.8, no.10
Indexed
SCIE
SCOPUS
Journal Title
ADVANCED ELECTRONIC MATERIALS
Volume
8
Number
10
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/145709
DOI
10.1002/aelm.202200365
ISSN
2199-160X
Abstract
Mobile species and matrix materials in ion motion-mediated memristors predominantly determine the switching characteristics and device performance. As a result of exploring a new type of mobile species, a Ru ion-mediated electrochemical metallization-like memristor with an amorphous oxide matrix is recently suggested to achieve a low switching current, voltage, and good retention simultaneously. Although the ion migration of Ru in the oxide matrix is previously confirmed, no in-depth study on how the crystallinity of the oxide matrix influences the Ru ion motion and switching characteristics has not been reported. Therefore, in this study, the crystallinity-dependent resistive switching behavior of the Pt/HfO2/Ru structure device is investigated. With the crystallized HfO2 layer, the preferred Ru ion migration through the grain boundaries occurs owing to the enhanced ion mobility, resulting in a high switching current (approximate to 100 mu A) with continuous metallic Ru conducting filaments. The discontinuous conducting filaments with amorphous HfO2 exhibit a low switching current. In addition, highly linear and symmetric conductance modulation properties are achieved, and over 91.5% accuracy in the Mixed National Institute of Standards and Technology (MNIST) pattern recognition test is demonstrated.
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