Low temperature and cost-effective growth of vertically aligned carbon nanofibers using spin-coated polymer-stabilized palladium nanocatalysts

We describe a fast and cost-effective process for the growth of carbon nanofibers (CNFs) at a temperature compatible with complementary metal oxide semiconductor technology, using highly stable polymer–Pd nanohybrid colloidal solutions of palladium catalyst nanoparticles (NPs). Two polymer–Pd nanohy...

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Main Authors: Amin M Saleem, Sareh Shafiee, Theodora Krasia-Christoforou, Ioanna Savva, Gert Göransson, Vincent Desmaris, Peter Enoksson
Format: Article
Language:English
Published: Taylor & Francis Group 2015-02-01
Series:Science and Technology of Advanced Materials
Subjects:
Online Access:http://dx.doi.org/10.1088/1468-6996/16/1/015007
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spelling doaj-930f0d0511024aae9ac0a7d4f68eae932020-11-25T03:20:46ZengTaylor & Francis GroupScience and Technology of Advanced Materials1468-69961878-55142015-02-0116110.1088/1468-6996/16/1/01500711661252Low temperature and cost-effective growth of vertically aligned carbon nanofibers using spin-coated polymer-stabilized palladium nanocatalystsAmin M Saleem0Sareh Shafiee1Theodora Krasia-Christoforou2Ioanna Savva3Gert Göransson4Vincent Desmaris5Peter Enoksson6Smoltek ABSmoltek ABUniversity of CyprusUniversity of CyprusUniversity of GothenburgSmoltek ABChalmers University of TechnologyWe describe a fast and cost-effective process for the growth of carbon nanofibers (CNFs) at a temperature compatible with complementary metal oxide semiconductor technology, using highly stable polymer–Pd nanohybrid colloidal solutions of palladium catalyst nanoparticles (NPs). Two polymer–Pd nanohybrids, namely poly(lauryl methacrylate)-block-poly((2-acetoacetoxy)ethyl methacrylate)/Pd (LauMAx-b-AEMAy/Pd) and polyvinylpyrrolidone/Pd were prepared in organic solvents and spin-coated onto silicon substrates. Subsequently, vertically aligned CNFs were grown on these NPs by plasma enhanced chemical vapor deposition at different temperatures. The electrical properties of the grown CNFs were evaluated using an electrochemical method, commonly used for the characterization of supercapacitors. The results show that the polymer–Pd nanohybrid solutions offer the optimum size range of palladium catalyst NPs enabling the growth of CNFs at temperatures as low as 350 °C. Furthermore, the CNFs grown at such a low temperature are vertically aligned similar to the CNFs grown at 550 °C. Finally the capacitive behavior of these CNFs was similar to that of the CNFs grown at high temperature assuring the same electrical properties thus enabling their usage in different applications such as on-chip capacitors, interconnects, thermal heat sink and energy storage solutions.http://dx.doi.org/10.1088/1468-6996/16/1/015007polymer-stabilized nanoparticlescarbon nanofiberslow temperature growthcost effective
collection DOAJ
language English
format Article
sources DOAJ
author Amin M Saleem
Sareh Shafiee
Theodora Krasia-Christoforou
Ioanna Savva
Gert Göransson
Vincent Desmaris
Peter Enoksson
spellingShingle Amin M Saleem
Sareh Shafiee
Theodora Krasia-Christoforou
Ioanna Savva
Gert Göransson
Vincent Desmaris
Peter Enoksson
Low temperature and cost-effective growth of vertically aligned carbon nanofibers using spin-coated polymer-stabilized palladium nanocatalysts
Science and Technology of Advanced Materials
polymer-stabilized nanoparticles
carbon nanofibers
low temperature growth
cost effective
author_facet Amin M Saleem
Sareh Shafiee
Theodora Krasia-Christoforou
Ioanna Savva
Gert Göransson
Vincent Desmaris
Peter Enoksson
author_sort Amin M Saleem
title Low temperature and cost-effective growth of vertically aligned carbon nanofibers using spin-coated polymer-stabilized palladium nanocatalysts
title_short Low temperature and cost-effective growth of vertically aligned carbon nanofibers using spin-coated polymer-stabilized palladium nanocatalysts
title_full Low temperature and cost-effective growth of vertically aligned carbon nanofibers using spin-coated polymer-stabilized palladium nanocatalysts
title_fullStr Low temperature and cost-effective growth of vertically aligned carbon nanofibers using spin-coated polymer-stabilized palladium nanocatalysts
title_full_unstemmed Low temperature and cost-effective growth of vertically aligned carbon nanofibers using spin-coated polymer-stabilized palladium nanocatalysts
title_sort low temperature and cost-effective growth of vertically aligned carbon nanofibers using spin-coated polymer-stabilized palladium nanocatalysts
publisher Taylor & Francis Group
series Science and Technology of Advanced Materials
issn 1468-6996
1878-5514
publishDate 2015-02-01
description We describe a fast and cost-effective process for the growth of carbon nanofibers (CNFs) at a temperature compatible with complementary metal oxide semiconductor technology, using highly stable polymer–Pd nanohybrid colloidal solutions of palladium catalyst nanoparticles (NPs). Two polymer–Pd nanohybrids, namely poly(lauryl methacrylate)-block-poly((2-acetoacetoxy)ethyl methacrylate)/Pd (LauMAx-b-AEMAy/Pd) and polyvinylpyrrolidone/Pd were prepared in organic solvents and spin-coated onto silicon substrates. Subsequently, vertically aligned CNFs were grown on these NPs by plasma enhanced chemical vapor deposition at different temperatures. The electrical properties of the grown CNFs were evaluated using an electrochemical method, commonly used for the characterization of supercapacitors. The results show that the polymer–Pd nanohybrid solutions offer the optimum size range of palladium catalyst NPs enabling the growth of CNFs at temperatures as low as 350 °C. Furthermore, the CNFs grown at such a low temperature are vertically aligned similar to the CNFs grown at 550 °C. Finally the capacitive behavior of these CNFs was similar to that of the CNFs grown at high temperature assuring the same electrical properties thus enabling their usage in different applications such as on-chip capacitors, interconnects, thermal heat sink and energy storage solutions.
topic polymer-stabilized nanoparticles
carbon nanofibers
low temperature growth
cost effective
url http://dx.doi.org/10.1088/1468-6996/16/1/015007
work_keys_str_mv AT aminmsaleem lowtemperatureandcosteffectivegrowthofverticallyalignedcarbonnanofibersusingspincoatedpolymerstabilizedpalladiumnanocatalysts
AT sarehshafiee lowtemperatureandcosteffectivegrowthofverticallyalignedcarbonnanofibersusingspincoatedpolymerstabilizedpalladiumnanocatalysts
AT theodorakrasiachristoforou lowtemperatureandcosteffectivegrowthofverticallyalignedcarbonnanofibersusingspincoatedpolymerstabilizedpalladiumnanocatalysts
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AT gertgoransson lowtemperatureandcosteffectivegrowthofverticallyalignedcarbonnanofibersusingspincoatedpolymerstabilizedpalladiumnanocatalysts
AT vincentdesmaris lowtemperatureandcosteffectivegrowthofverticallyalignedcarbonnanofibersusingspincoatedpolymerstabilizedpalladiumnanocatalysts
AT peterenoksson lowtemperatureandcosteffectivegrowthofverticallyalignedcarbonnanofibersusingspincoatedpolymerstabilizedpalladiumnanocatalysts
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