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Self-assembled oxide films with tailored nanoscale ionic and electronic channels for controlled resistive switching
by
Yun, Chao
, Tappertzhofen, Stefan
, Jia, Quanxi
, Wang, Haiyan
, Lee, Shinbuhm
, Jian, Jie
, Fan, Meng
, Hofmann, Stephan
, Kursumovic, Ahmed
, MacManus-Driscoll, Judith L.
, Cho, Seungho
, Lu, Ping
in
639/301/357/995
/ 639/766/1130/2798
/ electronic and spintronic devices
/ electronic properties and materials
/ Electrons
/ Energy efficiency
/ Engineering
/ Humanities and Social Sciences
/ MATERIALS SCIENCE
/ multidisciplinary
/ Nanocomposites
/ Random access memory
/ Reproducibility
/ Science
/ Science (multidisciplinary)
2016
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Self-assembled oxide films with tailored nanoscale ionic and electronic channels for controlled resistive switching
by
Yun, Chao
, Tappertzhofen, Stefan
, Jia, Quanxi
, Wang, Haiyan
, Lee, Shinbuhm
, Jian, Jie
, Fan, Meng
, Hofmann, Stephan
, Kursumovic, Ahmed
, MacManus-Driscoll, Judith L.
, Cho, Seungho
, Lu, Ping
in
639/301/357/995
/ 639/766/1130/2798
/ electronic and spintronic devices
/ electronic properties and materials
/ Electrons
/ Energy efficiency
/ Engineering
/ Humanities and Social Sciences
/ MATERIALS SCIENCE
/ multidisciplinary
/ Nanocomposites
/ Random access memory
/ Reproducibility
/ Science
/ Science (multidisciplinary)
2016
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Self-assembled oxide films with tailored nanoscale ionic and electronic channels for controlled resistive switching
by
Yun, Chao
, Tappertzhofen, Stefan
, Jia, Quanxi
, Wang, Haiyan
, Lee, Shinbuhm
, Jian, Jie
, Fan, Meng
, Hofmann, Stephan
, Kursumovic, Ahmed
, MacManus-Driscoll, Judith L.
, Cho, Seungho
, Lu, Ping
in
639/301/357/995
/ 639/766/1130/2798
/ electronic and spintronic devices
/ electronic properties and materials
/ Electrons
/ Energy efficiency
/ Engineering
/ Humanities and Social Sciences
/ MATERIALS SCIENCE
/ multidisciplinary
/ Nanocomposites
/ Random access memory
/ Reproducibility
/ Science
/ Science (multidisciplinary)
2016
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Self-assembled oxide films with tailored nanoscale ionic and electronic channels for controlled resistive switching
Journal Article
Self-assembled oxide films with tailored nanoscale ionic and electronic channels for controlled resistive switching
2016
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Overview
Resistive switches are non-volatile memory cells based on nano-ionic redox processes that offer energy efficient device architectures and open pathways to neuromorphics and cognitive computing. However, channel formation typically requires an irreversible, not well controlled electroforming process, giving difficulty to independently control ionic and electronic properties. The device performance is also limited by the incomplete understanding of the underlying mechanisms. Here, we report a novel memristive model material system based on self-assembled Sm-doped CeO
2
and SrTiO
3
films that allow the separate tailoring of nanoscale ionic and electronic channels at high density (∼10
12
inch
−2
). We systematically show that these devices allow precise engineering of the resistance states, thus enabling large on–off ratios and high reproducibility. The tunable structure presents an ideal platform to explore ionic and electronic mechanisms and we expect a wide potential impact also on other nascent technologies, ranging from ionic gating to micro-solid oxide fuel cells and neuromorphics.
Metal oxide resistive switches rely on the migration of oxygen vacancies and electrons under applied voltage. Here, Cho
et al
. use nanocomposites to control the electronic and ionic conductivities in spatially distinct channels, and fabricate memristors with high on/off ratios and reproducibility.
Publisher
Nature Publishing Group UK,Nature Publishing Group,Nature Portfolio
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