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Fully inkjet-printed multilayered graphene-based flexible electrodes for repeatable electrochemical response

Graphene has proven to be useful in biosensing applications. However, one of the main hurdles with printed graphene-based electrodes is achieving repeatable electrochemical performance from one printed electrode to another. We have developed a consistent fabrication process to control the sheet resi...

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Autores principales: Pandhi, Twinkle, Cornwell, Casey, Fujimoto, Kiyo, Barnes, Pete, Cox, Jasmine, Xiong, Hui, Davis, Paul H., Subbaraman, Harish, Koehne, Jessica E., Estrada, David
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9057201/
https://www.ncbi.nlm.nih.gov/pubmed/35517530
http://dx.doi.org/10.1039/d0ra04786d
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author Pandhi, Twinkle
Cornwell, Casey
Fujimoto, Kiyo
Barnes, Pete
Cox, Jasmine
Xiong, Hui
Davis, Paul H.
Subbaraman, Harish
Koehne, Jessica E.
Estrada, David
author_facet Pandhi, Twinkle
Cornwell, Casey
Fujimoto, Kiyo
Barnes, Pete
Cox, Jasmine
Xiong, Hui
Davis, Paul H.
Subbaraman, Harish
Koehne, Jessica E.
Estrada, David
author_sort Pandhi, Twinkle
collection PubMed
description Graphene has proven to be useful in biosensing applications. However, one of the main hurdles with printed graphene-based electrodes is achieving repeatable electrochemical performance from one printed electrode to another. We have developed a consistent fabrication process to control the sheet resistance of inkjet-printed graphene electrodes, thereby accomplishing repeatable electrochemical performance. Herein, we investigated the electrochemical properties of multilayered graphene (MLG) electrodes fully inkjet-printed (IJP) on flexible Kapton substrates. The electrodes were fabricated by inkjet printing three materials – (1) a conductive silver ink for electrical contact, (2) an insulating dielectric ink, and (3) MLG ink as the sensing material. The selected materials and fabrication methods provided great control over the ink rheology and material deposition, which enabled stable and repeatable electrochemical response: bending tests revealed the electrochemical behavior of these sensors remained consistent over 1000 bend cycles. Due to the abundance of structural defects (e.g., edge defects) present in the exfoliated graphene platelets, cyclic voltammetry (CV) of the graphene electrodes showed good electron transfer (k = 1.125 × 10(−2) cm s(−1)) with a detection limit (0.01 mM) for the ferric/ferrocyanide redox couple, [Fe(CN)(6)](−3/−4), which is comparable or superior to modified graphene or graphene oxide-based sensors. Additionally, the potentiometric response of the electrodes displayed good sensitivity over the pH range of 4–10. Moreover, a fully IJP three-electrode device (MLG, platinum, and Ag/AgCl) also showed quasi-reversibility compared to a single IJP MLG electrode device. These findings demonstrate significant promise for scalable fabrication of a flexible, low cost, and fully-IJP wearable sensor system needed for space, military, and commercial biosensing applications.
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spelling pubmed-90572012022-05-04 Fully inkjet-printed multilayered graphene-based flexible electrodes for repeatable electrochemical response Pandhi, Twinkle Cornwell, Casey Fujimoto, Kiyo Barnes, Pete Cox, Jasmine Xiong, Hui Davis, Paul H. Subbaraman, Harish Koehne, Jessica E. Estrada, David RSC Adv Chemistry Graphene has proven to be useful in biosensing applications. However, one of the main hurdles with printed graphene-based electrodes is achieving repeatable electrochemical performance from one printed electrode to another. We have developed a consistent fabrication process to control the sheet resistance of inkjet-printed graphene electrodes, thereby accomplishing repeatable electrochemical performance. Herein, we investigated the electrochemical properties of multilayered graphene (MLG) electrodes fully inkjet-printed (IJP) on flexible Kapton substrates. The electrodes were fabricated by inkjet printing three materials – (1) a conductive silver ink for electrical contact, (2) an insulating dielectric ink, and (3) MLG ink as the sensing material. The selected materials and fabrication methods provided great control over the ink rheology and material deposition, which enabled stable and repeatable electrochemical response: bending tests revealed the electrochemical behavior of these sensors remained consistent over 1000 bend cycles. Due to the abundance of structural defects (e.g., edge defects) present in the exfoliated graphene platelets, cyclic voltammetry (CV) of the graphene electrodes showed good electron transfer (k = 1.125 × 10(−2) cm s(−1)) with a detection limit (0.01 mM) for the ferric/ferrocyanide redox couple, [Fe(CN)(6)](−3/−4), which is comparable or superior to modified graphene or graphene oxide-based sensors. Additionally, the potentiometric response of the electrodes displayed good sensitivity over the pH range of 4–10. Moreover, a fully IJP three-electrode device (MLG, platinum, and Ag/AgCl) also showed quasi-reversibility compared to a single IJP MLG electrode device. These findings demonstrate significant promise for scalable fabrication of a flexible, low cost, and fully-IJP wearable sensor system needed for space, military, and commercial biosensing applications. The Royal Society of Chemistry 2020-10-16 /pmc/articles/PMC9057201/ /pubmed/35517530 http://dx.doi.org/10.1039/d0ra04786d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Pandhi, Twinkle
Cornwell, Casey
Fujimoto, Kiyo
Barnes, Pete
Cox, Jasmine
Xiong, Hui
Davis, Paul H.
Subbaraman, Harish
Koehne, Jessica E.
Estrada, David
Fully inkjet-printed multilayered graphene-based flexible electrodes for repeatable electrochemical response
title Fully inkjet-printed multilayered graphene-based flexible electrodes for repeatable electrochemical response
title_full Fully inkjet-printed multilayered graphene-based flexible electrodes for repeatable electrochemical response
title_fullStr Fully inkjet-printed multilayered graphene-based flexible electrodes for repeatable electrochemical response
title_full_unstemmed Fully inkjet-printed multilayered graphene-based flexible electrodes for repeatable electrochemical response
title_short Fully inkjet-printed multilayered graphene-based flexible electrodes for repeatable electrochemical response
title_sort fully inkjet-printed multilayered graphene-based flexible electrodes for repeatable electrochemical response
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9057201/
https://www.ncbi.nlm.nih.gov/pubmed/35517530
http://dx.doi.org/10.1039/d0ra04786d
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