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Graphene as a Piezoresistive Material in Strain Sensing Applications

High accuracy measurement of mechanical strain is critical and broadly practiced in several application areas including structural health monitoring, industrial process control, manufacturing, avionics and the automotive industry, to name a few. Strain sensors, otherwise known as strain gauges, are...

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Autores principales: Irani, Farid Sayar, Shafaghi, Ali Hosseinpour, Tasdelen, Melih Can, Delipinar, Tugce, Kaya, Ceyda Elcin, Yapici, Guney Guven, Yapici, Murat Kaya
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8779301/
https://www.ncbi.nlm.nih.gov/pubmed/35056284
http://dx.doi.org/10.3390/mi13010119
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author Irani, Farid Sayar
Shafaghi, Ali Hosseinpour
Tasdelen, Melih Can
Delipinar, Tugce
Kaya, Ceyda Elcin
Yapici, Guney Guven
Yapici, Murat Kaya
author_facet Irani, Farid Sayar
Shafaghi, Ali Hosseinpour
Tasdelen, Melih Can
Delipinar, Tugce
Kaya, Ceyda Elcin
Yapici, Guney Guven
Yapici, Murat Kaya
author_sort Irani, Farid Sayar
collection PubMed
description High accuracy measurement of mechanical strain is critical and broadly practiced in several application areas including structural health monitoring, industrial process control, manufacturing, avionics and the automotive industry, to name a few. Strain sensors, otherwise known as strain gauges, are fueled by various nanomaterials, among which graphene has attracted great interest in recent years, due to its unique electro-mechanical characteristics. Graphene shows not only exceptional physical properties but also has remarkable mechanical properties, such as piezoresistivity, which makes it a perfect candidate for strain sensing applications. In the present review, we provide an in-depth overview of the latest studies focusing on graphene and its strain sensing mechanism along with various applications. We start by providing a description of the fundamental properties, synthesis techniques and characterization methods of graphene, and then build forward to the discussion of numerous types of graphene-based strain sensors with side-by-side tabular comparison in terms of figures-of-merit, including strain range and sensitivity, otherwise referred to as the gauge factor. We demonstrate the material synthesis, device fabrication and integration challenges for researchers to achieve both wide strain range and high sensitivity in graphene-based strain sensors. Last of all, several applications of graphene-based strain sensors for different purposes are described. All in all, the evolutionary process of graphene-based strain sensors in recent years, as well as the upcoming challenges and future directions for emerging studies are highlighted.
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spelling pubmed-87793012022-01-22 Graphene as a Piezoresistive Material in Strain Sensing Applications Irani, Farid Sayar Shafaghi, Ali Hosseinpour Tasdelen, Melih Can Delipinar, Tugce Kaya, Ceyda Elcin Yapici, Guney Guven Yapici, Murat Kaya Micromachines (Basel) Review High accuracy measurement of mechanical strain is critical and broadly practiced in several application areas including structural health monitoring, industrial process control, manufacturing, avionics and the automotive industry, to name a few. Strain sensors, otherwise known as strain gauges, are fueled by various nanomaterials, among which graphene has attracted great interest in recent years, due to its unique electro-mechanical characteristics. Graphene shows not only exceptional physical properties but also has remarkable mechanical properties, such as piezoresistivity, which makes it a perfect candidate for strain sensing applications. In the present review, we provide an in-depth overview of the latest studies focusing on graphene and its strain sensing mechanism along with various applications. We start by providing a description of the fundamental properties, synthesis techniques and characterization methods of graphene, and then build forward to the discussion of numerous types of graphene-based strain sensors with side-by-side tabular comparison in terms of figures-of-merit, including strain range and sensitivity, otherwise referred to as the gauge factor. We demonstrate the material synthesis, device fabrication and integration challenges for researchers to achieve both wide strain range and high sensitivity in graphene-based strain sensors. Last of all, several applications of graphene-based strain sensors for different purposes are described. All in all, the evolutionary process of graphene-based strain sensors in recent years, as well as the upcoming challenges and future directions for emerging studies are highlighted. MDPI 2022-01-12 /pmc/articles/PMC8779301/ /pubmed/35056284 http://dx.doi.org/10.3390/mi13010119 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Irani, Farid Sayar
Shafaghi, Ali Hosseinpour
Tasdelen, Melih Can
Delipinar, Tugce
Kaya, Ceyda Elcin
Yapici, Guney Guven
Yapici, Murat Kaya
Graphene as a Piezoresistive Material in Strain Sensing Applications
title Graphene as a Piezoresistive Material in Strain Sensing Applications
title_full Graphene as a Piezoresistive Material in Strain Sensing Applications
title_fullStr Graphene as a Piezoresistive Material in Strain Sensing Applications
title_full_unstemmed Graphene as a Piezoresistive Material in Strain Sensing Applications
title_short Graphene as a Piezoresistive Material in Strain Sensing Applications
title_sort graphene as a piezoresistive material in strain sensing applications
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8779301/
https://www.ncbi.nlm.nih.gov/pubmed/35056284
http://dx.doi.org/10.3390/mi13010119
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