Control of carbon nanotube cantilever vibrator for nano-antenna applications

The cantilever vibrator motion system of a carbon nanotube (CNT) is considered the next step in developing cold cathodes for VHF-band nano-antennas. In cases where a nano-antenna is used in noisy environments, this device interferes with other communication devices. In this paper, both the mechanica...

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Main Authors: Ali Jasim Ghaffoori, Wameedh Riyadh Abdul-Adheem
Format: Article
Language:English
Published: Taylor & Francis Group 2019-01-01
Series:Cogent Engineering
Subjects:
Online Access:http://dx.doi.org/10.1080/23311916.2019.1710428
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spelling doaj-2beafe6f2be346cfa1b3dc38f792db5e2021-03-02T14:46:51ZengTaylor & Francis GroupCogent Engineering2331-19162019-01-016110.1080/23311916.2019.17104281710428Control of carbon nanotube cantilever vibrator for nano-antenna applicationsAli Jasim Ghaffoori0Wameedh Riyadh Abdul-Adheem1Al-Ma’moun University CollegeAl-Ma’moun University CollegeThe cantilever vibrator motion system of a carbon nanotube (CNT) is considered the next step in developing cold cathodes for VHF-band nano-antennas. In cases where a nano-antenna is used in noisy environments, this device interferes with other communication devices. In this paper, both the mechanical oscillation and the field electron emission of the CNT cantilever are modeled using the Wiener model. A control method is proposed based on the Wiener model for tracking the reception–emission current and reference emission current of the nano-antenna receiver by transforming the nonlinear control system into a simple linear system with satisfactory performance. In the nano-antenna receiver, the Wiener model offers the suppression of undesirable interference signals and noise to reduce the tracking error between the reception and reference signals by controlling the applied DC voltage as a function of the tracking error. A numerical simulation is implemented to realistically reflect the theoretical results, which show the suppression of the interference noise signal as compared with the conventional control scheme.http://dx.doi.org/10.1080/23311916.2019.1710428nano-antennacarbon nanotube (cnt)wiener model
collection DOAJ
language English
format Article
sources DOAJ
author Ali Jasim Ghaffoori
Wameedh Riyadh Abdul-Adheem
spellingShingle Ali Jasim Ghaffoori
Wameedh Riyadh Abdul-Adheem
Control of carbon nanotube cantilever vibrator for nano-antenna applications
Cogent Engineering
nano-antenna
carbon nanotube (cnt)
wiener model
author_facet Ali Jasim Ghaffoori
Wameedh Riyadh Abdul-Adheem
author_sort Ali Jasim Ghaffoori
title Control of carbon nanotube cantilever vibrator for nano-antenna applications
title_short Control of carbon nanotube cantilever vibrator for nano-antenna applications
title_full Control of carbon nanotube cantilever vibrator for nano-antenna applications
title_fullStr Control of carbon nanotube cantilever vibrator for nano-antenna applications
title_full_unstemmed Control of carbon nanotube cantilever vibrator for nano-antenna applications
title_sort control of carbon nanotube cantilever vibrator for nano-antenna applications
publisher Taylor & Francis Group
series Cogent Engineering
issn 2331-1916
publishDate 2019-01-01
description The cantilever vibrator motion system of a carbon nanotube (CNT) is considered the next step in developing cold cathodes for VHF-band nano-antennas. In cases where a nano-antenna is used in noisy environments, this device interferes with other communication devices. In this paper, both the mechanical oscillation and the field electron emission of the CNT cantilever are modeled using the Wiener model. A control method is proposed based on the Wiener model for tracking the reception–emission current and reference emission current of the nano-antenna receiver by transforming the nonlinear control system into a simple linear system with satisfactory performance. In the nano-antenna receiver, the Wiener model offers the suppression of undesirable interference signals and noise to reduce the tracking error between the reception and reference signals by controlling the applied DC voltage as a function of the tracking error. A numerical simulation is implemented to realistically reflect the theoretical results, which show the suppression of the interference noise signal as compared with the conventional control scheme.
topic nano-antenna
carbon nanotube (cnt)
wiener model
url http://dx.doi.org/10.1080/23311916.2019.1710428
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AT wameedhriyadhabduladheem controlofcarbonnanotubecantilevervibratorfornanoantennaapplications
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