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Electrical and Low Frequency Noise Characterization of Graphene Chemical Sensor Devices Having Different Geometries

Chemiresistive graphene sensors are promising for chemical sensing applications due to their simple device structure, high sensitivity, potential for miniaturization, low-cost, and fast response. In this work, we investigate the effect of (1) ZnO nanoparticle functionalization and (2) engineered def...

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Autores principales: Nah, JongBong, Perkins, Frank Keith, Lock, Evgeniya H., Nath, Anindya, Boyd, Anthony, Myers-Ward, Rachael L., Gaskill, David Kurt, Osofsky, Michael, Rao, Mulpuri V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8838935/
https://www.ncbi.nlm.nih.gov/pubmed/35161931
http://dx.doi.org/10.3390/s22031183
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author Nah, JongBong
Perkins, Frank Keith
Lock, Evgeniya H.
Nath, Anindya
Boyd, Anthony
Myers-Ward, Rachael L.
Gaskill, David Kurt
Osofsky, Michael
Rao, Mulpuri V.
author_facet Nah, JongBong
Perkins, Frank Keith
Lock, Evgeniya H.
Nath, Anindya
Boyd, Anthony
Myers-Ward, Rachael L.
Gaskill, David Kurt
Osofsky, Michael
Rao, Mulpuri V.
author_sort Nah, JongBong
collection PubMed
description Chemiresistive graphene sensors are promising for chemical sensing applications due to their simple device structure, high sensitivity, potential for miniaturization, low-cost, and fast response. In this work, we investigate the effect of (1) ZnO nanoparticle functionalization and (2) engineered defects onto graphene sensing channel on device resistance and low frequency electrical noise. The engineered defects of interest include 2D patterns of squares, stars, and circles and 1D patterns of slots parallel and transverse to the applied electric potential. The goal of this work is to determine which devices are best suited for chemical sensing applications. We find that, relative to pristine graphene devices, nanoparticle functionalization leads to reduced contact resistance but increased sheet resistance. In addition, functionalization lowers 1/f current noise on all but the uniform mesa device and the two devices with graphene strips parallel to carrier transport. The strongest correlations between noise and engineering defects, where normalized noise amplitude as a function of frequency f is described by a model of A(N)/f(γ), are that γ increases with graphene area and contact area but decreases with device total perimeter, including internal features. We did not find evidence of a correlation between the scalar amplitude, A(N), and the device channel geometries. In general, for a given device area, the least noise was observed on the least-etched device. These results will lead to an understanding of what features are needed to obtain the optimal device resistance and how to reduce the 1/f noise which will lead to improved sensor performance.
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spelling pubmed-88389352022-02-13 Electrical and Low Frequency Noise Characterization of Graphene Chemical Sensor Devices Having Different Geometries Nah, JongBong Perkins, Frank Keith Lock, Evgeniya H. Nath, Anindya Boyd, Anthony Myers-Ward, Rachael L. Gaskill, David Kurt Osofsky, Michael Rao, Mulpuri V. Sensors (Basel) Article Chemiresistive graphene sensors are promising for chemical sensing applications due to their simple device structure, high sensitivity, potential for miniaturization, low-cost, and fast response. In this work, we investigate the effect of (1) ZnO nanoparticle functionalization and (2) engineered defects onto graphene sensing channel on device resistance and low frequency electrical noise. The engineered defects of interest include 2D patterns of squares, stars, and circles and 1D patterns of slots parallel and transverse to the applied electric potential. The goal of this work is to determine which devices are best suited for chemical sensing applications. We find that, relative to pristine graphene devices, nanoparticle functionalization leads to reduced contact resistance but increased sheet resistance. In addition, functionalization lowers 1/f current noise on all but the uniform mesa device and the two devices with graphene strips parallel to carrier transport. The strongest correlations between noise and engineering defects, where normalized noise amplitude as a function of frequency f is described by a model of A(N)/f(γ), are that γ increases with graphene area and contact area but decreases with device total perimeter, including internal features. We did not find evidence of a correlation between the scalar amplitude, A(N), and the device channel geometries. In general, for a given device area, the least noise was observed on the least-etched device. These results will lead to an understanding of what features are needed to obtain the optimal device resistance and how to reduce the 1/f noise which will lead to improved sensor performance. MDPI 2022-02-04 /pmc/articles/PMC8838935/ /pubmed/35161931 http://dx.doi.org/10.3390/s22031183 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
Nah, JongBong
Perkins, Frank Keith
Lock, Evgeniya H.
Nath, Anindya
Boyd, Anthony
Myers-Ward, Rachael L.
Gaskill, David Kurt
Osofsky, Michael
Rao, Mulpuri V.
Electrical and Low Frequency Noise Characterization of Graphene Chemical Sensor Devices Having Different Geometries
title Electrical and Low Frequency Noise Characterization of Graphene Chemical Sensor Devices Having Different Geometries
title_full Electrical and Low Frequency Noise Characterization of Graphene Chemical Sensor Devices Having Different Geometries
title_fullStr Electrical and Low Frequency Noise Characterization of Graphene Chemical Sensor Devices Having Different Geometries
title_full_unstemmed Electrical and Low Frequency Noise Characterization of Graphene Chemical Sensor Devices Having Different Geometries
title_short Electrical and Low Frequency Noise Characterization of Graphene Chemical Sensor Devices Having Different Geometries
title_sort electrical and low frequency noise characterization of graphene chemical sensor devices having different geometries
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8838935/
https://www.ncbi.nlm.nih.gov/pubmed/35161931
http://dx.doi.org/10.3390/s22031183
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