New Concepts for Production of Scalable Single Layer Oxidized Regions by Local Anodic Oxidation of Graphene
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2019-08-21
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Wiley
Resumen
A deep comprehension of the local anodic oxidation process in 2D materials
is achieved thanks to an extensive experimental and theoretical study of this
phenomenon in graphene. This requires to arrange a novel instrumental
device capable to generate separated regions of monolayer graphene
oxide (GO) over graphene, with any desired size, from micrometers to
unprecedented mm2, in minutes, a milestone in GO monolayer production.
GO regions are manufactured by overlapping lots of individual oxide spots of
thousands μm2 area. The high reproducibility and circular size of the spots
allows not only an exhaustive experimental characterization inside, but also
establishing an original model for oxide expansion which, from classical first
principles, overcomes the traditional paradigm of the water bridge, and is
applicable to any 2D-material. This tool predicts the oxidation behavior with
voltage and exposure time, as well as the expected electrical current along
the process. The hitherto unreported transient current is measured during
oxidation, gaining insight on its components, electrochemical and transport.
Just combining electrical measurements and optical imaging estimating
carrier mobility and degree of oxidation is possible. X-ray photoelectron
spectroscopy reveals a graphene oxidation about 30%, somewhat lower to
that obtained by Hummers’ method.
Descripción
A deep comprehension of the local anodic oxidation process in 2D materials
is achieved thanks to an extensive experimental and theoretical study of this
phenomenon in graphene. This requires to arrange a novel instrumental
device capable to generate separated regions of monolayer graphene
oxide (GO) over graphene, with any desired size, from micrometers to
unprecedented mm2, in minutes, a milestone in GO monolayer production.
GO regions are manufactured by overlapping lots of individual oxide spots of
thousands μm2 area. The high reproducibility and circular size of the spots
allows not only an exhaustive experimental characterization inside, but also
establishing an original model for oxide expansion which, from classical first
principles, overcomes the traditional paradigm of the water bridge, and is
applicable to any 2D-material. This tool predicts the oxidation behavior with
voltage and exposure time, as well as the expected electrical current along
the process. The hitherto unreported transient current is measured during
oxidation, gaining insight on its components, electrochemical and transport.
Just combining electrical measurements and optical imaging estimating
carrier mobility and degree of oxidation is possible. X-ray photoelectron
spectroscopy reveals a graphene oxidation about 30%, somewhat lower to
that obtained by Hummers’ method.
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Citación
S. J. Quesada, F. Borrás, M. García-Vélez, C. Coya, E. Climent, C. Munuera, I. Villar, V. A. de la Peña O'Shea, A. de Andrés, Á. L. Álvarez, New Concepts for Production of Scalable Single Layer Oxidized Regions by Local Anodic Oxidation of Graphene. Small 2019, 15, 1902817. https://doi.org/10.1002/smll.201902817
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