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Adjusting the Connection Length of Additively Manufactured Electrodes Changes the Electrochemical and Electroanalytical Performance

Changing the connection length of an additively manufactured electrode (AME) has a significant impact on the electrochemical and electroanalytical response of the system. In the literature, many electrochemical platforms have been produced using additive manufacturing with great variations in how th...

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Autores principales: Crapnell, Robert D., Garcia-Miranda Ferrari, Alejandro, Whittingham, Matthew J., Sigley, Evelyn, Hurst, Nicholas J., Keefe, Edmund M., Banks, Craig E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9736051/
https://www.ncbi.nlm.nih.gov/pubmed/36502222
http://dx.doi.org/10.3390/s22239521
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author Crapnell, Robert D.
Garcia-Miranda Ferrari, Alejandro
Whittingham, Matthew J.
Sigley, Evelyn
Hurst, Nicholas J.
Keefe, Edmund M.
Banks, Craig E.
author_facet Crapnell, Robert D.
Garcia-Miranda Ferrari, Alejandro
Whittingham, Matthew J.
Sigley, Evelyn
Hurst, Nicholas J.
Keefe, Edmund M.
Banks, Craig E.
author_sort Crapnell, Robert D.
collection PubMed
description Changing the connection length of an additively manufactured electrode (AME) has a significant impact on the electrochemical and electroanalytical response of the system. In the literature, many electrochemical platforms have been produced using additive manufacturing with great variations in how the AME itself is described. It is seen that when measuring the near-ideal outer-sphere redox probe hexaamineruthenium (III) chloride (RuHex), decreasing the AME connection length enhances the heterogeneous electrochemical transfer (HET) rate constant ([Formula: see text]) for the system. At slow scan rates, there is a clear change in the peak-to-peak separation (ΔEp) observed in the RuHex voltammograms, with the ΔEp shifting from 118 ± 5 mV to 291 ± 27 mV for the 10 and 100 mm electrodes, respectively. For the electroanalytical determination of dopamine, no significant difference is noticed at low concentrations between 10- and 100-mm connection length AMEs. However, at concentrations of 1 mM dopamine, the peak oxidation is shifted to significantly higher potentials as the AME connection length is increased, with a shift of 150 mV measured. It is recommended that in future work, all AME dimensions, not just the working electrode head size, is reported along with the resistance measured through electrochemical impedance spectroscopy to allow for appropriate comparisons with other reports in the literature. To produce the best additively manufactured electrochemical systems in the future, researchers should endeavor to use the shortest AME connection lengths that are viable for their designs.
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spelling pubmed-97360512022-12-11 Adjusting the Connection Length of Additively Manufactured Electrodes Changes the Electrochemical and Electroanalytical Performance Crapnell, Robert D. Garcia-Miranda Ferrari, Alejandro Whittingham, Matthew J. Sigley, Evelyn Hurst, Nicholas J. Keefe, Edmund M. Banks, Craig E. Sensors (Basel) Article Changing the connection length of an additively manufactured electrode (AME) has a significant impact on the electrochemical and electroanalytical response of the system. In the literature, many electrochemical platforms have been produced using additive manufacturing with great variations in how the AME itself is described. It is seen that when measuring the near-ideal outer-sphere redox probe hexaamineruthenium (III) chloride (RuHex), decreasing the AME connection length enhances the heterogeneous electrochemical transfer (HET) rate constant ([Formula: see text]) for the system. At slow scan rates, there is a clear change in the peak-to-peak separation (ΔEp) observed in the RuHex voltammograms, with the ΔEp shifting from 118 ± 5 mV to 291 ± 27 mV for the 10 and 100 mm electrodes, respectively. For the electroanalytical determination of dopamine, no significant difference is noticed at low concentrations between 10- and 100-mm connection length AMEs. However, at concentrations of 1 mM dopamine, the peak oxidation is shifted to significantly higher potentials as the AME connection length is increased, with a shift of 150 mV measured. It is recommended that in future work, all AME dimensions, not just the working electrode head size, is reported along with the resistance measured through electrochemical impedance spectroscopy to allow for appropriate comparisons with other reports in the literature. To produce the best additively manufactured electrochemical systems in the future, researchers should endeavor to use the shortest AME connection lengths that are viable for their designs. MDPI 2022-12-06 /pmc/articles/PMC9736051/ /pubmed/36502222 http://dx.doi.org/10.3390/s22239521 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
Crapnell, Robert D.
Garcia-Miranda Ferrari, Alejandro
Whittingham, Matthew J.
Sigley, Evelyn
Hurst, Nicholas J.
Keefe, Edmund M.
Banks, Craig E.
Adjusting the Connection Length of Additively Manufactured Electrodes Changes the Electrochemical and Electroanalytical Performance
title Adjusting the Connection Length of Additively Manufactured Electrodes Changes the Electrochemical and Electroanalytical Performance
title_full Adjusting the Connection Length of Additively Manufactured Electrodes Changes the Electrochemical and Electroanalytical Performance
title_fullStr Adjusting the Connection Length of Additively Manufactured Electrodes Changes the Electrochemical and Electroanalytical Performance
title_full_unstemmed Adjusting the Connection Length of Additively Manufactured Electrodes Changes the Electrochemical and Electroanalytical Performance
title_short Adjusting the Connection Length of Additively Manufactured Electrodes Changes the Electrochemical and Electroanalytical Performance
title_sort adjusting the connection length of additively manufactured electrodes changes the electrochemical and electroanalytical performance
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9736051/
https://www.ncbi.nlm.nih.gov/pubmed/36502222
http://dx.doi.org/10.3390/s22239521
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