Control of local ion transport to create unique functional nanodevices based on ionic conductors

The development of nanometer-scale devices operating under a new principle that could overcome the limitations of current semiconductor devices has attracted interest in recent years. We propose that nanoionic devices that operate by controlling the local transport of ions are promising in this rega...

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Main Author: Kazuya Terabe, Tsuyoshi Hasegawa, Changhao Liang and Masakazu Aono
Format: Article
Language:English
Published: Taylor & Francis Group 2007-01-01
Series:Science and Technology of Advanced Materials
Online Access:http://www.iop.org/EJ/abstract/1468-6996/8/6/A15
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spelling doaj-88c9b1801a554fca9b0a439a77ce6c862020-11-25T00:02:02ZengTaylor & Francis GroupScience and Technology of Advanced Materials1468-69961878-55142007-01-0186536Control of local ion transport to create unique functional nanodevices based on ionic conductorsKazuya Terabe, Tsuyoshi Hasegawa, Changhao Liang and Masakazu AonoThe development of nanometer-scale devices operating under a new principle that could overcome the limitations of current semiconductor devices has attracted interest in recent years. We propose that nanoionic devices that operate by controlling the local transport of ions are promising in this regard. It is possible to control the local transport of ions using the solid electrochemical properties of ionic and electronic mixed conductors. As an example of this concept, here, we report a method of controlling the transport of silver ions of the mixed-conductor silver sulfide (Ag2S) crystal and basic research on nanoionic devices based on this mixed conductor. These devices show unique functions such as atom deposition, resistance switching, and quantum point contact switching. The switches operate through the formation and dissolution of an atomic bridge between the electrodes, and the behavior is realized by control of the local solid-state electrochemical reaction. Potential nanoionic devices utilizing the unique functions and characters that do not exist in conventional semiconductor devices are discussed.http://www.iop.org/EJ/abstract/1468-6996/8/6/A15
collection DOAJ
language English
format Article
sources DOAJ
author Kazuya Terabe, Tsuyoshi Hasegawa, Changhao Liang and Masakazu Aono
spellingShingle Kazuya Terabe, Tsuyoshi Hasegawa, Changhao Liang and Masakazu Aono
Control of local ion transport to create unique functional nanodevices based on ionic conductors
Science and Technology of Advanced Materials
author_facet Kazuya Terabe, Tsuyoshi Hasegawa, Changhao Liang and Masakazu Aono
author_sort Kazuya Terabe, Tsuyoshi Hasegawa, Changhao Liang and Masakazu Aono
title Control of local ion transport to create unique functional nanodevices based on ionic conductors
title_short Control of local ion transport to create unique functional nanodevices based on ionic conductors
title_full Control of local ion transport to create unique functional nanodevices based on ionic conductors
title_fullStr Control of local ion transport to create unique functional nanodevices based on ionic conductors
title_full_unstemmed Control of local ion transport to create unique functional nanodevices based on ionic conductors
title_sort control of local ion transport to create unique functional nanodevices based on ionic conductors
publisher Taylor & Francis Group
series Science and Technology of Advanced Materials
issn 1468-6996
1878-5514
publishDate 2007-01-01
description The development of nanometer-scale devices operating under a new principle that could overcome the limitations of current semiconductor devices has attracted interest in recent years. We propose that nanoionic devices that operate by controlling the local transport of ions are promising in this regard. It is possible to control the local transport of ions using the solid electrochemical properties of ionic and electronic mixed conductors. As an example of this concept, here, we report a method of controlling the transport of silver ions of the mixed-conductor silver sulfide (Ag2S) crystal and basic research on nanoionic devices based on this mixed conductor. These devices show unique functions such as atom deposition, resistance switching, and quantum point contact switching. The switches operate through the formation and dissolution of an atomic bridge between the electrodes, and the behavior is realized by control of the local solid-state electrochemical reaction. Potential nanoionic devices utilizing the unique functions and characters that do not exist in conventional semiconductor devices are discussed.
url http://www.iop.org/EJ/abstract/1468-6996/8/6/A15
work_keys_str_mv AT kazuyaterabetsuyoshihasegawachanghaoliangandmasakazuaono controloflocaliontransporttocreateuniquefunctionalnanodevicesbasedonionicconductors
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