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Fine Structure Constant Defines Visual Transparency of Graphene

Science · 2008 · Vol. 320(5881) · pp. 1308–1308
Rahul R. NairPeter BlakeA. N. GrigorenkoKostya S. NovoselovTimothy J. BoothTobias StauberN. M. R. PeresA. K. Geǐm

Abstract

There are few phenomena in condensed matter physics that are defined only by the fundamental constants and do not depend on material parameters. Examples are the resistivity quantum, h/e2 (h is Planck's constant and e the electron charge), that appears in a variety of transport experiments and the magnetic flux quantum, h/e, playing an important role in the physics of superconductivity. By and large, sophisticated facilities and special measurement conditions are required to observe any of these phenomena. We show that the opacity of suspended graphene is defined solely by the fine structure constant, a = e2/hc feminine 1/137 (where c is the speed of light), the parameter that describes coupling between light and relativistic electrons and that is traditionally associated with quantum electrodynamics rather than materials science. Despite being only one atom thick, graphene is found to absorb a significant (pa = 2.3%) fraction of incident white light, a consequence of graphene's unique electronic structure.

Graphene research and applicationsAdvanced Memory and Neural ComputingCCD and CMOS Imaging SensorsTransparency (behavior)GrapheneConstant (computer programming)NanotechnologyMaterials scienceComputer scienceComputer security

Funding

  • Engineering and Physical Sciences Research Council
Citations
8,896
FWCI
115.69
field-weighted impact
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5
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References
The rise of graphene
Nature Materials · 2007 · 39,026 citations
Dynamical Conductivity and Zero-Mode Anomaly in Honeycomb Lattices
Journal of the Physical Society of Japan · 2002 · 453 citations
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