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Application-Specific Catalyst Layers: Pt-Containing Carbon Nanofibers for Hydrogen Peroxide Detection

[Image: see text] Complete removal of metal catalyst particles from carbon nanofibers (CNFs) and other carbon nanostructures is extremely difficult, and the envisioned applications may be compromised by the left-over impurities. To circumvent these problems, one should use, wherever possible, such c...

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Autores principales: Laurila, Tomi, Sainio, Sami, Jiang, Hua, Isoaho, Noora, Koehne, Jessica E., Etula, Jarkko, Koskinen, Jari, Meyyappan, M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2017
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6044567/
https://www.ncbi.nlm.nih.gov/pubmed/30023609
http://dx.doi.org/10.1021/acsomega.6b00441
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author Laurila, Tomi
Sainio, Sami
Jiang, Hua
Isoaho, Noora
Koehne, Jessica E.
Etula, Jarkko
Koskinen, Jari
Meyyappan, M.
author_facet Laurila, Tomi
Sainio, Sami
Jiang, Hua
Isoaho, Noora
Koehne, Jessica E.
Etula, Jarkko
Koskinen, Jari
Meyyappan, M.
author_sort Laurila, Tomi
collection PubMed
description [Image: see text] Complete removal of metal catalyst particles from carbon nanofibers (CNFs) and other carbon nanostructures is extremely difficult, and the envisioned applications may be compromised by the left-over impurities. To circumvent these problems, one should use, wherever possible, such catalyst materials that are meant to remain in the structure and have some application-specific role, making any removal steps unnecessary. Thus, as a proof-of-concept, we present here a nanocarbon-based material platform for electrochemical hydrogen peroxide measurement utilizing a Pt catalyst layer to grow CNFs with intact Pt particles at the tips of the CNFs. Backed by careful scanning transmission electron microscopy analysis, we show that this material can be readily realized with the Pt catalyst layer thickness impacting the resulting structure and also present a growth model to explain the evolution of the different types of structures. In addition, we show by electrochemical analysis that the material exhibits characteristic features of Pt in cyclic voltammetry and it can detect very small amounts of hydrogen peroxide with very fast response times. Thus, the present sensor platform provides an interesting electrode material with potential for biomolecule detection and in fuel cells and batteries. In the wider range, we propose a new approach where the selection of catalytic particles used for carbon nanostructure growth is made so that (i) they do not need to be removed and (ii) they will have essential role in the final application.
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spelling pubmed-60445672018-07-16 Application-Specific Catalyst Layers: Pt-Containing Carbon Nanofibers for Hydrogen Peroxide Detection Laurila, Tomi Sainio, Sami Jiang, Hua Isoaho, Noora Koehne, Jessica E. Etula, Jarkko Koskinen, Jari Meyyappan, M. ACS Omega [Image: see text] Complete removal of metal catalyst particles from carbon nanofibers (CNFs) and other carbon nanostructures is extremely difficult, and the envisioned applications may be compromised by the left-over impurities. To circumvent these problems, one should use, wherever possible, such catalyst materials that are meant to remain in the structure and have some application-specific role, making any removal steps unnecessary. Thus, as a proof-of-concept, we present here a nanocarbon-based material platform for electrochemical hydrogen peroxide measurement utilizing a Pt catalyst layer to grow CNFs with intact Pt particles at the tips of the CNFs. Backed by careful scanning transmission electron microscopy analysis, we show that this material can be readily realized with the Pt catalyst layer thickness impacting the resulting structure and also present a growth model to explain the evolution of the different types of structures. In addition, we show by electrochemical analysis that the material exhibits characteristic features of Pt in cyclic voltammetry and it can detect very small amounts of hydrogen peroxide with very fast response times. Thus, the present sensor platform provides an interesting electrode material with potential for biomolecule detection and in fuel cells and batteries. In the wider range, we propose a new approach where the selection of catalytic particles used for carbon nanostructure growth is made so that (i) they do not need to be removed and (ii) they will have essential role in the final application. American Chemical Society 2017-02-13 /pmc/articles/PMC6044567/ /pubmed/30023609 http://dx.doi.org/10.1021/acsomega.6b00441 Text en Copyright © 2017 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Laurila, Tomi
Sainio, Sami
Jiang, Hua
Isoaho, Noora
Koehne, Jessica E.
Etula, Jarkko
Koskinen, Jari
Meyyappan, M.
Application-Specific Catalyst Layers: Pt-Containing Carbon Nanofibers for Hydrogen Peroxide Detection
title Application-Specific Catalyst Layers: Pt-Containing Carbon Nanofibers for Hydrogen Peroxide Detection
title_full Application-Specific Catalyst Layers: Pt-Containing Carbon Nanofibers for Hydrogen Peroxide Detection
title_fullStr Application-Specific Catalyst Layers: Pt-Containing Carbon Nanofibers for Hydrogen Peroxide Detection
title_full_unstemmed Application-Specific Catalyst Layers: Pt-Containing Carbon Nanofibers for Hydrogen Peroxide Detection
title_short Application-Specific Catalyst Layers: Pt-Containing Carbon Nanofibers for Hydrogen Peroxide Detection
title_sort application-specific catalyst layers: pt-containing carbon nanofibers for hydrogen peroxide detection
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6044567/
https://www.ncbi.nlm.nih.gov/pubmed/30023609
http://dx.doi.org/10.1021/acsomega.6b00441
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