Anisotropy of \pi-plasmon Dispersion Relation of AA-stacked Graphite
Chih-Wei Chiu, Feng-Lin Shyu, Ming-Fa Lin, Godfrey Gumbs, Oleksiy, Roslyak

TL;DR
This paper calculates the c-plasmon dispersion in AA-stacked graphite, revealing anisotropic behavior influenced by interlayer interactions, with implications for plasmon propagation directions and energy flow.
Contribution
It provides a detailed analysis of c-plasmon dispersion relations in AA-stacked graphite, highlighting anisotropy and interlayer effects not present in 2D graphene.
Findings
Plasmon frequency depends on in-plane momentum magnitude and direction.
Dispersion relation transitions from quadratic to linear with increasing angle.
Backward and forward plasmon propagation modes are identified.
Abstract
The dispersion relation of the high energy optical \pi-plasmons of simple hexagonal intrinsic graphite was calculated within the self-consistent-field approximation. The plasmon frequency \omega_p is determined as functions of the transferred momentum along the hexagonal plane in the Brillouin zone and its perpendicular component . These plasmons are isotropic within the plane in the long wavelength limit. As the in-plane transferred momentum is increased, the plasmon frequency strongly depends on its magnitude and direction (\phi). With increasing angle, the dispersion relation within the hexagonal plane is gradually changed from quadratic to nearly linear form. There are many significant differences for the \pi-plasmon dispersion relations between 2D graphene and 3D AA-stacked graphite. They include - and \phi-dependence and \pi-plasmon bandwidth.…
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