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Vortex fluidic mediated transformation of graphite into highly conducting graphene scrolls.
Vimalanathan, Kasturi; Suarez-Martinez, Irene; Peiris, M Chandramalika R; Antonio, Joshua; de Tomas, Carla; Zou, Yichao; Zou, Jin; Duan, Xiaofei; Lamb, Robert N; Harvey, David P; Alharbi, Thaar M D; Gibson, Christopher T; Marks, Nigel A; Darwish, Nadim; Raston, Colin L.
Afiliación
  • Vimalanathan K; Flinders Institute for Nanoscale Science & Technology, College of Science and Engineering, Flinders University Adelaide SA 5001 Australia colin.raston@flinders.edu.au.
  • Suarez-Martinez I; Department of Physics and Astronomy, Curtin University Bentley Campus Perth WA 6102 Australia.
  • Peiris MCR; School of Molecular and Life Sciences, Curtin Institute of Functional Molecule and Interfaces, Curtin University Bentley WA 6102 Australia nadim.darwish@curtin.edu.au.
  • Antonio J; School of Molecular and Life Sciences, Curtin Institute of Functional Molecule and Interfaces, Curtin University Bentley WA 6102 Australia nadim.darwish@curtin.edu.au.
  • de Tomas C; Department of Physics and Astronomy, Curtin University Bentley Campus Perth WA 6102 Australia.
  • Zou Y; School of Engineering, The University of Queensland Brisbane QLD 4072 Australia.
  • Zou J; School of Engineering, The University of Queensland Brisbane QLD 4072 Australia.
  • Duan X; Trace Analysis for Chemical, Earth and Environmental Sciences (TrACEES), The University of Melbourne Victoria 3010 Australia.
  • Lamb RN; Trace Analysis for Chemical, Earth and Environmental Sciences (TrACEES), The University of Melbourne Victoria 3010 Australia.
  • Harvey DP; Flinders Institute for Nanoscale Science & Technology, College of Science and Engineering, Flinders University Adelaide SA 5001 Australia colin.raston@flinders.edu.au.
  • Alharbi TMD; Flinders Institute for Nanoscale Science & Technology, College of Science and Engineering, Flinders University Adelaide SA 5001 Australia colin.raston@flinders.edu.au.
  • Gibson CT; Flinders Institute for Nanoscale Science & Technology, College of Science and Engineering, Flinders University Adelaide SA 5001 Australia colin.raston@flinders.edu.au.
  • Marks NA; Flinders Microscopy and Microanalysis, College of Science and Engineering, Flinders University Adelaide South Australia 5042 Australia.
  • Darwish N; Department of Physics and Astronomy, Curtin University Bentley Campus Perth WA 6102 Australia.
  • Raston CL; School of Molecular and Life Sciences, Curtin Institute of Functional Molecule and Interfaces, Curtin University Bentley WA 6102 Australia nadim.darwish@curtin.edu.au.
Nanoscale Adv ; 1(7): 2495-2501, 2019 Jul 10.
Article en En | MEDLINE | ID: mdl-36132736
ABSTRACT
Two-dimensional graphene has remarkable properties that are revolutionary in many applications. Scrolling monolayer graphene with precise tunability would create further potential for niche applications but this has proved challenging. We have now established the ability to fabricate monolayer graphene scrolls in high yield directly from graphite flakes under non-equilibrium conditions at room temperature in dynamic thin films of liquid. Using conductive atomic force microscopy we demonstrate that the graphene scrolls form highly conducting electrical contacts to highly oriented pyrolytic graphite (HOPG). These highly conducting graphite-graphene contacts are attractive for the fabrication of interconnects in microcircuits and align with the increasing interest in building all sp2-carbon circuits. Above a temperature of 450 °C the scrolls unravel into buckled graphene sheets, and this process is understood on a theoretical basis. These findings augur well for new applications, in particular for incorporating the scrolls into miniaturized electronic devices.

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Idioma: En Revista: Nanoscale Adv Año: 2019 Tipo del documento: Article

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Idioma: En Revista: Nanoscale Adv Año: 2019 Tipo del documento: Article