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Three-Dimensional Finite Element Method Simulation of Perforated Graphene Nano-Electro-Mechanical (NEM) Switches

The miniaturization trend leads to the development of a graphene based nanoelectromechanical (NEM) switch to fulfill the high demand in low power device applications. In this article, we highlight the finite element (FEM) simulation of the graphene-based NEM switches of fixed-fixed ends design with...

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Autores principales: Zulkefli, Mohd Amir, Mohamed, Mohd Ambri, Siow, Kim S., Yeop Majlis, Burhanuddin, Kulothungan, Jothiramalingam, Muruganathan, Manoharan, Mizuta, Hiroshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6190186/
https://www.ncbi.nlm.nih.gov/pubmed/30400428
http://dx.doi.org/10.3390/mi8080236
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author Zulkefli, Mohd Amir
Mohamed, Mohd Ambri
Siow, Kim S.
Yeop Majlis, Burhanuddin
Kulothungan, Jothiramalingam
Muruganathan, Manoharan
Mizuta, Hiroshi
author_facet Zulkefli, Mohd Amir
Mohamed, Mohd Ambri
Siow, Kim S.
Yeop Majlis, Burhanuddin
Kulothungan, Jothiramalingam
Muruganathan, Manoharan
Mizuta, Hiroshi
author_sort Zulkefli, Mohd Amir
collection PubMed
description The miniaturization trend leads to the development of a graphene based nanoelectromechanical (NEM) switch to fulfill the high demand in low power device applications. In this article, we highlight the finite element (FEM) simulation of the graphene-based NEM switches of fixed-fixed ends design with beam structures which are perforated and intact. Pull-in and pull-out characteristics are analyzed by using the FEM approach provided by IntelliSuite software, version 8.8.5.1. The FEM results are consistent with the published experimental data. This analysis shows the possibility of achieving a low pull-in voltage that is below 2 V for a ratio below 15:0.03:0.7 value for the graphene beam length, thickness, and air gap thickness, respectively. The introduction of perforation in the graphene beam-based NEM switch further achieved the pull-in voltage as low as 1.5 V for a 250 nm hole length, 100 nm distance between each hole, and 12-number of hole column. Then, a von Mises stress analysis is conducted to investigate the mechanical stability of the intact and perforated graphene-based NEM switch. This analysis shows that a longer and thinner graphene beam reduced the von Mises stress. The introduction of perforation concept further reduced the von Mises stress at the graphene beam end and the beam center by approximately ~20–35% and ~10–20%, respectively. These theoretical results, performed by FEM simulation, are expected to expedite improvements in the working parameter and dimension for low voltage and better mechanical stability operation of graphene-based NEM switch device fabrication.
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spelling pubmed-61901862018-11-01 Three-Dimensional Finite Element Method Simulation of Perforated Graphene Nano-Electro-Mechanical (NEM) Switches Zulkefli, Mohd Amir Mohamed, Mohd Ambri Siow, Kim S. Yeop Majlis, Burhanuddin Kulothungan, Jothiramalingam Muruganathan, Manoharan Mizuta, Hiroshi Micromachines (Basel) Article The miniaturization trend leads to the development of a graphene based nanoelectromechanical (NEM) switch to fulfill the high demand in low power device applications. In this article, we highlight the finite element (FEM) simulation of the graphene-based NEM switches of fixed-fixed ends design with beam structures which are perforated and intact. Pull-in and pull-out characteristics are analyzed by using the FEM approach provided by IntelliSuite software, version 8.8.5.1. The FEM results are consistent with the published experimental data. This analysis shows the possibility of achieving a low pull-in voltage that is below 2 V for a ratio below 15:0.03:0.7 value for the graphene beam length, thickness, and air gap thickness, respectively. The introduction of perforation in the graphene beam-based NEM switch further achieved the pull-in voltage as low as 1.5 V for a 250 nm hole length, 100 nm distance between each hole, and 12-number of hole column. Then, a von Mises stress analysis is conducted to investigate the mechanical stability of the intact and perforated graphene-based NEM switch. This analysis shows that a longer and thinner graphene beam reduced the von Mises stress. The introduction of perforation concept further reduced the von Mises stress at the graphene beam end and the beam center by approximately ~20–35% and ~10–20%, respectively. These theoretical results, performed by FEM simulation, are expected to expedite improvements in the working parameter and dimension for low voltage and better mechanical stability operation of graphene-based NEM switch device fabrication. MDPI 2017-07-31 /pmc/articles/PMC6190186/ /pubmed/30400428 http://dx.doi.org/10.3390/mi8080236 Text en © 2017 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zulkefli, Mohd Amir
Mohamed, Mohd Ambri
Siow, Kim S.
Yeop Majlis, Burhanuddin
Kulothungan, Jothiramalingam
Muruganathan, Manoharan
Mizuta, Hiroshi
Three-Dimensional Finite Element Method Simulation of Perforated Graphene Nano-Electro-Mechanical (NEM) Switches
title Three-Dimensional Finite Element Method Simulation of Perforated Graphene Nano-Electro-Mechanical (NEM) Switches
title_full Three-Dimensional Finite Element Method Simulation of Perforated Graphene Nano-Electro-Mechanical (NEM) Switches
title_fullStr Three-Dimensional Finite Element Method Simulation of Perforated Graphene Nano-Electro-Mechanical (NEM) Switches
title_full_unstemmed Three-Dimensional Finite Element Method Simulation of Perforated Graphene Nano-Electro-Mechanical (NEM) Switches
title_short Three-Dimensional Finite Element Method Simulation of Perforated Graphene Nano-Electro-Mechanical (NEM) Switches
title_sort three-dimensional finite element method simulation of perforated graphene nano-electro-mechanical (nem) switches
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6190186/
https://www.ncbi.nlm.nih.gov/pubmed/30400428
http://dx.doi.org/10.3390/mi8080236
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