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Electrical Manipulation of Nanofilaments in Transition-Metal Oxides for Resistance-Based Memory

Authors
Lee, Myoung-JaeHan, SeungwuJeon, Sang HoPark, Bae HoKang, Bo SooAhn, Seung-EonKim, Ki HwanLee, Chang BumKim, Chang JungYoo, In-KyeongSeo, David H.Li, Xiang-ShuPark, Jong-BongLee, Jung-HyunPark, Youngsoo
Issue Date
Apr-2009
Publisher
AMER CHEMICAL SOC
Citation
NANO LETTERS, v.9, no.4, pp.1476 - 1481
Indexed
SCIE
SCOPUS
Journal Title
NANO LETTERS
Volume
9
Number
4
Start Page
1476
End Page
1481
URI
https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/41315
DOI
10.1021/nl803387q
ISSN
1530-6984
Abstract
The fabrication of controlled nanostructures such as quantum dots, nanotubes, nanowires, and nanopillars has progressed rapidly over the past 10 years. However, both bottom-up and top-down methods to integrate the nanostructures are met with several challenges. For practical applications with the high level of the integration, an approach that can fabricate the required structures locally is desirable. In addition, the electrical signal to construct and control the nanostructures can provide significant advantages toward the stability and ordering. Through experiments on the negative resistance switching phenomenon in Pt-NiO-Pt structures, we have fabricated nanofilament channels that can be electrically connected or disconnected. Various analyses indicate that the nanofilaments are made of nickel and are formed at the grain boundaries. The scaling behaviors of the nickel nanofilaments were closely examined, with respect to the switching time, power, and resistance. In particular, the 100 nm x 100 nm cell was switchable on the nanosecond scale, making them ideal for the basis for high-speed, high-density, nonvolatile memory applications.
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