Layered memristive and memcapacitive switches for printable electronics

Memristors promise to emulate the appealing characteristics of biological neural systems. Solution-processed heterostructures are now shown to behave as memristive and memcapacitive switches compatible with printed electronics applications. Novel computing technologies that imitate the principles of...

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Veröffentlicht in:Nature materials 2015-02, Vol.14 (2), p.199-204
Hauptverfasser: Bessonov, Alexander A., Kirikova, Marina N., Petukhov, Dmitrii I., Allen, Mark, Ryhänen, Tapani, Bailey, Marc J. A.
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Sprache:eng
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Zusammenfassung:Memristors promise to emulate the appealing characteristics of biological neural systems. Solution-processed heterostructures are now shown to behave as memristive and memcapacitive switches compatible with printed electronics applications. Novel computing technologies that imitate the principles of biological neural systems may offer low power consumption along with distinct cognitive and learning advantages 1 , 2 . The development of reliable memristive devices capable of storing multiple states of information has opened up new applications such as neuromorphic circuits and adaptive systems 3 , 4 . At the same time, the explosive growth of the printed electronics industry has expedited the search for advanced memory materials suitable for manufacturing flexible devices 5 . Here, we demonstrate that solution-processed MoO x /MoS 2 and WO x /WS 2 heterostructures sandwiched between two printed silver electrodes exhibit an unprecedentedly large and tunable electrical resistance range from 10 2 to 10 8  Ω combined with low programming voltages of 0.1–0.2 V. The bipolar resistive switching, with a concurrent capacitive contribution, is governed by an ultrathin (
ISSN:1476-1122
1476-4660
DOI:10.1038/nmat4135