Raman spectroscopy as probe of nanometre-scale strain variations in graphene
Рамановская спектроскопия как метод исследования наноразмерных вариаций деформации в графене
2015-09-29
SCID: 54.1/ax72a62k
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Raman 2D line widthRaman spectroscopycarrier mobilitygraphenenanometre-scale strain variations
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Abstract (AI)
Confocal Raman spectroscopy has emerged as a major, versatile workhorse for the non-invasive characterization of graphene. Although it is successfully used to determine the number of layers, the quality of edges, and the effects of strain, doping and disorder, the nature of the experimentally observed broadening of the most prominent Raman 2D line has remained unclear. Here we show that the observed 2D line width contains valuable information on strain variations in graphene on length scales far below the laser spot size, that is, on the nanometre-scale. This finding is highly relevant as it has been shown recently that such nanometre-scaled strain variations limit the carrier mobility in high-quality graphene devices. Consequently, the 2D line width is a good and easily accessible quantity for classifying the crystalline quality, nanometre-scale flatness as well as local electronic properties of graphene, all important for future scientific and industrial applications.
Key Findings
1
Confocal Raman spectroscopy reveals that graphene’s broadened Raman 2D line encodes strain variations on length scales far below the laser spot, down to nanometres.
2
Nanoscale strain variations are important because they can limit carrier mobility in high-quality graphene devices.
3
Raman 2D-line broadening can classify graphene’s crystalline quality, nanoscale flatness, and local electronic properties.
4
The 2D line width provides an accessible probe of nanoscale strain in graphene, despite the diffraction-limited spatial resolution of the measurement.
Research Object
graphene
Research Subject
nanometre-scale strain variations in graphene and their manifestation in the Raman 2D line width
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Publication Date
2015-09-29
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