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Industrial Graphene Coating of Low-Voltage Copper Wires for Power Distribution

[Image: see text] Copper (Cu) is the electrical conductor of choice in many categories of electrical wiring, with household and building installation being the major market of this metal. This work demonstrates the coating of Cu wires—with diameters relevant for low-voltage (LV) applications—with gr...

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Autores principales: Mishra, Neeraj, Vlamidis, Ylea, Martini, Leonardo, Lanza, Arianna, Gebeyehu, Zewdu M., Jouvray, Alex, La Sala, Marco, Gemmi, Mauro, Mišeikis, Vaidotas, Perry, Matthew, Teo, Kenneth B. K., Forti, Stiven, Coletti, Camilla
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10391742/
https://www.ncbi.nlm.nih.gov/pubmed/37533604
http://dx.doi.org/10.1021/acsaenm.3c00249
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author Mishra, Neeraj
Vlamidis, Ylea
Martini, Leonardo
Lanza, Arianna
Gebeyehu, Zewdu M.
Jouvray, Alex
La Sala, Marco
Gemmi, Mauro
Mišeikis, Vaidotas
Perry, Matthew
Teo, Kenneth B. K.
Forti, Stiven
Coletti, Camilla
author_facet Mishra, Neeraj
Vlamidis, Ylea
Martini, Leonardo
Lanza, Arianna
Gebeyehu, Zewdu M.
Jouvray, Alex
La Sala, Marco
Gemmi, Mauro
Mišeikis, Vaidotas
Perry, Matthew
Teo, Kenneth B. K.
Forti, Stiven
Coletti, Camilla
author_sort Mishra, Neeraj
collection PubMed
description [Image: see text] Copper (Cu) is the electrical conductor of choice in many categories of electrical wiring, with household and building installation being the major market of this metal. This work demonstrates the coating of Cu wires—with diameters relevant for low-voltage (LV) applications—with graphene. The chemical vapor deposition (CVD) coating process is rapid, safe, scalable, and industrially compatible. Graphene-coated Cu wires display good oxidation resistance and increased electrical conductivity (up to 1% immediately after coating and up to 3% after 24 months), allowing for wire diameter reduction and thus significant savings in wire production costs. Combined spectroscopic and diffraction analysis indicates that the conductivity increase is due to a change in Cu crystallinity induced by the coating process conditions, while electrical testing of aged wires shows that graphene plays a major role in maintaining improved electrical performances over long periods of time. Finally, graphene coating of Cu wires using an ambient-pressure roll-to-roll (R2R) CVD reactor is demonstrated. This enables the in-line production of graphene-coated metallic wires as required for industrial scale-up.
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spelling pubmed-103917422023-08-02 Industrial Graphene Coating of Low-Voltage Copper Wires for Power Distribution Mishra, Neeraj Vlamidis, Ylea Martini, Leonardo Lanza, Arianna Gebeyehu, Zewdu M. Jouvray, Alex La Sala, Marco Gemmi, Mauro Mišeikis, Vaidotas Perry, Matthew Teo, Kenneth B. K. Forti, Stiven Coletti, Camilla ACS Appl Eng Mater [Image: see text] Copper (Cu) is the electrical conductor of choice in many categories of electrical wiring, with household and building installation being the major market of this metal. This work demonstrates the coating of Cu wires—with diameters relevant for low-voltage (LV) applications—with graphene. The chemical vapor deposition (CVD) coating process is rapid, safe, scalable, and industrially compatible. Graphene-coated Cu wires display good oxidation resistance and increased electrical conductivity (up to 1% immediately after coating and up to 3% after 24 months), allowing for wire diameter reduction and thus significant savings in wire production costs. Combined spectroscopic and diffraction analysis indicates that the conductivity increase is due to a change in Cu crystallinity induced by the coating process conditions, while electrical testing of aged wires shows that graphene plays a major role in maintaining improved electrical performances over long periods of time. Finally, graphene coating of Cu wires using an ambient-pressure roll-to-roll (R2R) CVD reactor is demonstrated. This enables the in-line production of graphene-coated metallic wires as required for industrial scale-up. American Chemical Society 2023-06-01 /pmc/articles/PMC10391742/ /pubmed/37533604 http://dx.doi.org/10.1021/acsaenm.3c00249 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Mishra, Neeraj
Vlamidis, Ylea
Martini, Leonardo
Lanza, Arianna
Gebeyehu, Zewdu M.
Jouvray, Alex
La Sala, Marco
Gemmi, Mauro
Mišeikis, Vaidotas
Perry, Matthew
Teo, Kenneth B. K.
Forti, Stiven
Coletti, Camilla
Industrial Graphene Coating of Low-Voltage Copper Wires for Power Distribution
title Industrial Graphene Coating of Low-Voltage Copper Wires for Power Distribution
title_full Industrial Graphene Coating of Low-Voltage Copper Wires for Power Distribution
title_fullStr Industrial Graphene Coating of Low-Voltage Copper Wires for Power Distribution
title_full_unstemmed Industrial Graphene Coating of Low-Voltage Copper Wires for Power Distribution
title_short Industrial Graphene Coating of Low-Voltage Copper Wires for Power Distribution
title_sort industrial graphene coating of low-voltage copper wires for power distribution
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10391742/
https://www.ncbi.nlm.nih.gov/pubmed/37533604
http://dx.doi.org/10.1021/acsaenm.3c00249
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