General Vacuum Electronics
The electron devices in which electrons do not collide with other particles or in which the collision probability is very small in the transport process can be theoretically regarded as general vacuum electron devices. General vacuum electron devices include micro-fabricated vacuum nano-electronic d...
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Format: | Article |
Language: | English |
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The Korean Institute of Electromagnetic Engineering and Science
2020-01-01
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Series: | Journal of Electromagnetic Engineering and Science |
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Online Access: | http://www.jees.kr/upload/pdf/jees-2020-20-1-1.pdf |
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author | Jinjun Feng Xinghui Li Jiannan Hu Jun Cai |
author_facet | Jinjun Feng Xinghui Li Jiannan Hu Jun Cai |
author_sort | Jinjun Feng |
collection | DOAJ |
description | The electron devices in which electrons do not collide with other particles or in which the collision probability is very small in the transport process can be theoretically regarded as general vacuum electron devices. General vacuum electron devices include micro-fabricated vacuum nano-electronic devices, which can work in atmosphere, and some solid-state electron devices with nanoscale channel for electrons whose material characteristics are close to those of vacuum channels. Vacuum nano-electron devices (e.g., nanotriodes) are expected to be the fundamental elements for high-speed, radiation-resistant large-scale vacuum integrated circuits. The solid-state electron devices with spin semiconductor materials, multiferroics or topological crystal insulators are quite different from traditional semiconductor devices and are expected to operate under novel principles. Understanding vacuum electron devices from a microcosmic perspective and understanding solid-state electron devices from a vacuum perspective will promote a union of vacuum electronics and microelectronics, as well as the formation and development of general vacuum electronics. |
first_indexed | 2024-12-17T03:28:38Z |
format | Article |
id | doaj.art-a444a39249f94fb2a56a912f38f88254 |
institution | Directory Open Access Journal |
issn | 2671-7255 2671-7263 |
language | English |
last_indexed | 2024-12-17T03:28:38Z |
publishDate | 2020-01-01 |
publisher | The Korean Institute of Electromagnetic Engineering and Science |
record_format | Article |
series | Journal of Electromagnetic Engineering and Science |
spelling | doaj.art-a444a39249f94fb2a56a912f38f882542022-12-21T22:05:20ZengThe Korean Institute of Electromagnetic Engineering and ScienceJournal of Electromagnetic Engineering and Science2671-72552671-72632020-01-012011810.26866/jees.2020.20.1.13367General Vacuum ElectronicsJinjun FengXinghui LiJiannan HuJun CaiThe electron devices in which electrons do not collide with other particles or in which the collision probability is very small in the transport process can be theoretically regarded as general vacuum electron devices. General vacuum electron devices include micro-fabricated vacuum nano-electronic devices, which can work in atmosphere, and some solid-state electron devices with nanoscale channel for electrons whose material characteristics are close to those of vacuum channels. Vacuum nano-electron devices (e.g., nanotriodes) are expected to be the fundamental elements for high-speed, radiation-resistant large-scale vacuum integrated circuits. The solid-state electron devices with spin semiconductor materials, multiferroics or topological crystal insulators are quite different from traditional semiconductor devices and are expected to operate under novel principles. Understanding vacuum electron devices from a microcosmic perspective and understanding solid-state electron devices from a vacuum perspective will promote a union of vacuum electronics and microelectronics, as well as the formation and development of general vacuum electronics.http://www.jees.kr/upload/pdf/jees-2020-20-1-1.pdfgeneral vacuum electronicsmultiferroicsspin semiconductor materialstopological crystal insulatorsvacuum nano-electron devices |
spellingShingle | Jinjun Feng Xinghui Li Jiannan Hu Jun Cai General Vacuum Electronics Journal of Electromagnetic Engineering and Science general vacuum electronics multiferroics spin semiconductor materials topological crystal insulators vacuum nano-electron devices |
title | General Vacuum Electronics |
title_full | General Vacuum Electronics |
title_fullStr | General Vacuum Electronics |
title_full_unstemmed | General Vacuum Electronics |
title_short | General Vacuum Electronics |
title_sort | general vacuum electronics |
topic | general vacuum electronics multiferroics spin semiconductor materials topological crystal insulators vacuum nano-electron devices |
url | http://www.jees.kr/upload/pdf/jees-2020-20-1-1.pdf |
work_keys_str_mv | AT jinjunfeng generalvacuumelectronics AT xinghuili generalvacuumelectronics AT jiannanhu generalvacuumelectronics AT juncai generalvacuumelectronics |