Landau damping of quantum plasmons in metal nanostructures

Затухание Ландау квантовых плазмонов в металлических наноструктурах
Di Xiao, Zhenyu Zhang, Xiaoguang Li
2013-02-06

Landau dampingelectron–hole pairsmetal nanostructuresquantum plasmonsrandom phase approximation
Using the random phase approximation with both real space and discrete electron–hole (e–h) pair basis sets, we study the broadening of surface plasmons in metal structures of reduced dimensionality, where Landau damping is the dominant dissipation channel and presents an intrinsic limitation to plasmonics technology. We show that for every prototypical class of systems considered, including zero-dimensional nanoshells, one-dimensional coaxial nanotubes and two-dimensional ultrathin films, Landau damping can be drastically tuned due to energy quantization of the individual electron levels and e–h pairs. Both the generic trend and oscillatory nature of the tunability are in stark contrast with the expectations of the semiclassical surface scattering picture. Our approach also allows to vividly depict the evolution of the plasmons from the quantum to the classical regime, and to elucidate the underlying physical origin of hybridization broadening of nearly degenerate plasmon modes. These findings may serve as a guide in the future design of plasmonic nanostructures of desirable functionalities.
1
Landau damping can be drastically tuned in nanoshells, coaxial nanotubes, and ultrathin films through quantization of individual electron levels and electron–hole pairs.
2
The analysis demonstrates the evolution of plasmons from quantum to classical behavior and explains hybridization broadening in nearly degenerate plasmon modes.
3
The damping tunability exhibits oscillatory behavior and generic trends that strongly contradict predictions based on semiclassical surface-scattering models.
4
The results provide design guidance for engineering plasmonic nanostructures with targeted functionalities and damping characteristics.
5
Using the random phase approximation with real-space and discrete electron–hole pair bases, the study models surface-plasmon broadening in reduced-dimensionality metal nanostructures.

Surface plasmons in reduced-dimensional metal nanostructures, including nanoshells, coaxial nanotubes, and ultrathin films

Quantum Landau-damping broadening and its tunability through quantized electron levels and electron–hole pairs, including hybridization broadening of nearly degenerate plasmon modes

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2013-02-06
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Authors
Di Xiao
Zhenyu Zhang
Xiaoguang Li
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