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Impedance Characteristics of Monolayer and Bilayer Graphene Films with Biofilm Formation and Growth

Biofilms are the result of bacterial activity. When the number of bacteria (attached to materials’ surfaces) reaches a certain threshold value, then the bacteria simultaneously excrete organic polymers (EPS: extracellular polymeric substances). These sticky polymers encase and protect the bacteria....

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Autores principales: Nakagawa, Ryoichi, Saito, Kai, Kanematsu, Hideyuki, Miura, Hidekazu, Ishihara, Masatou, Barry, Dana M., Kogo, Takeshi, Ogawa, Akiko, Hirai, Nobumitsu, Hagio, Takeshi, Ichino, Ryoichi, Ban, Masahito, Yoshitake, Michiko, Zimmermann, Stefan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9101136/
https://www.ncbi.nlm.nih.gov/pubmed/35591238
http://dx.doi.org/10.3390/s22093548
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author Nakagawa, Ryoichi
Saito, Kai
Kanematsu, Hideyuki
Miura, Hidekazu
Ishihara, Masatou
Barry, Dana M.
Kogo, Takeshi
Ogawa, Akiko
Hirai, Nobumitsu
Hagio, Takeshi
Ichino, Ryoichi
Ban, Masahito
Yoshitake, Michiko
Zimmermann, Stefan
author_facet Nakagawa, Ryoichi
Saito, Kai
Kanematsu, Hideyuki
Miura, Hidekazu
Ishihara, Masatou
Barry, Dana M.
Kogo, Takeshi
Ogawa, Akiko
Hirai, Nobumitsu
Hagio, Takeshi
Ichino, Ryoichi
Ban, Masahito
Yoshitake, Michiko
Zimmermann, Stefan
author_sort Nakagawa, Ryoichi
collection PubMed
description Biofilms are the result of bacterial activity. When the number of bacteria (attached to materials’ surfaces) reaches a certain threshold value, then the bacteria simultaneously excrete organic polymers (EPS: extracellular polymeric substances). These sticky polymers encase and protect the bacteria. They are called biofilms and contain about 80% water. Other components of biofilm include polymeric carbon compounds such as polysaccharides and bacteria. It is well-known that biofilms cause various medical and hygiene problems. Therefore, it is important to have a sensor that can detect biofilms to solve such problems. Graphene is a single-atom-thick sheet in which carbon atoms are connected in a hexagonal shape like a honeycomb. Carbon compounds generally bond easily to graphene. Therefore, it is highly possible that graphene could serve as a sensor to monitor biofilm formation and growth. In our previous study, monolayer graphene was prepared on a glass substrate by the chemical vapor deposition (CVD) method. Its biofilm forming ability was compared with that of graphite. As a result, the CVD graphene film had the higher sensitivity for biofilm formation. However, the monolayer graphene has a mechanical disadvantage when used as a biofilm sensor. Therefore, for this new research project, we prepared bilayer graphene with high mechanical strength by using the CVD process on copper substrates. For these specimens, we measured the capacitance component of the specimens’ impedance. In addition, we have included a discussion about the possibility of applying them as future sensors for monitoring biofilm formation and growth.
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spelling pubmed-91011362022-05-14 Impedance Characteristics of Monolayer and Bilayer Graphene Films with Biofilm Formation and Growth Nakagawa, Ryoichi Saito, Kai Kanematsu, Hideyuki Miura, Hidekazu Ishihara, Masatou Barry, Dana M. Kogo, Takeshi Ogawa, Akiko Hirai, Nobumitsu Hagio, Takeshi Ichino, Ryoichi Ban, Masahito Yoshitake, Michiko Zimmermann, Stefan Sensors (Basel) Article Biofilms are the result of bacterial activity. When the number of bacteria (attached to materials’ surfaces) reaches a certain threshold value, then the bacteria simultaneously excrete organic polymers (EPS: extracellular polymeric substances). These sticky polymers encase and protect the bacteria. They are called biofilms and contain about 80% water. Other components of biofilm include polymeric carbon compounds such as polysaccharides and bacteria. It is well-known that biofilms cause various medical and hygiene problems. Therefore, it is important to have a sensor that can detect biofilms to solve such problems. Graphene is a single-atom-thick sheet in which carbon atoms are connected in a hexagonal shape like a honeycomb. Carbon compounds generally bond easily to graphene. Therefore, it is highly possible that graphene could serve as a sensor to monitor biofilm formation and growth. In our previous study, monolayer graphene was prepared on a glass substrate by the chemical vapor deposition (CVD) method. Its biofilm forming ability was compared with that of graphite. As a result, the CVD graphene film had the higher sensitivity for biofilm formation. However, the monolayer graphene has a mechanical disadvantage when used as a biofilm sensor. Therefore, for this new research project, we prepared bilayer graphene with high mechanical strength by using the CVD process on copper substrates. For these specimens, we measured the capacitance component of the specimens’ impedance. In addition, we have included a discussion about the possibility of applying them as future sensors for monitoring biofilm formation and growth. MDPI 2022-05-06 /pmc/articles/PMC9101136/ /pubmed/35591238 http://dx.doi.org/10.3390/s22093548 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 Article
Nakagawa, Ryoichi
Saito, Kai
Kanematsu, Hideyuki
Miura, Hidekazu
Ishihara, Masatou
Barry, Dana M.
Kogo, Takeshi
Ogawa, Akiko
Hirai, Nobumitsu
Hagio, Takeshi
Ichino, Ryoichi
Ban, Masahito
Yoshitake, Michiko
Zimmermann, Stefan
Impedance Characteristics of Monolayer and Bilayer Graphene Films with Biofilm Formation and Growth
title Impedance Characteristics of Monolayer and Bilayer Graphene Films with Biofilm Formation and Growth
title_full Impedance Characteristics of Monolayer and Bilayer Graphene Films with Biofilm Formation and Growth
title_fullStr Impedance Characteristics of Monolayer and Bilayer Graphene Films with Biofilm Formation and Growth
title_full_unstemmed Impedance Characteristics of Monolayer and Bilayer Graphene Films with Biofilm Formation and Growth
title_short Impedance Characteristics of Monolayer and Bilayer Graphene Films with Biofilm Formation and Growth
title_sort impedance characteristics of monolayer and bilayer graphene films with biofilm formation and growth
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9101136/
https://www.ncbi.nlm.nih.gov/pubmed/35591238
http://dx.doi.org/10.3390/s22093548
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