Nonlocal Hydrodynamic Response of Plasmonic Structures at Deep-nanometer Scale
Paper in proceeding, 2020

The electromagnetic properties of plasmonic nano-Antennas and scatterers with the characteristic dimensions at deep-nanometer scale, governed by quantum mechanical effects, have been extensively studied by a hydrodynamic approach. Several hydrodynamic models, together with additional boundary conditions, have been proposed to deal with the collective motion of the free electron gas in metals. In this work, four hydrodynamic models, namely the hard-wall hydrodynamic model, the curl-free hydrodynamic model, the shear forces hydrodynamic model, and the quantum hydrodynamic model are employed. The study is performed for a deep-nanometer metal core-dielectric shell sphere, excited by a plane wave. It is demonstrated that the far field characteristics of the core-shell nanosphere are largely affected by the choice of a specific hydrodynamic model.

Plasmonics

Deep-nanometer scale

Additional boundary condition

Propagation

Nonlocal hydrodynamic model

Author

Mario Kupresak

KU Leuven

Tomislav Marinovic

Chalmers, Electrical Engineering, Communication, Antennas and Optical Networks

KU Leuven

Xuezhi Zheng

KU Leuven

G. Vandenbosch

KU Leuven

V. V. Moshchalkov

KU Leuven

Proceedings Elmar - International Symposium Electronics in Marine

13342630 (ISSN)

Vol. 2020-September 1-4 9219026
9781728159720 (ISBN)

62nd International Symposium ELMAR, ELMAR 2020
Zadar, Croatia,

Subject Categories

Applied Mechanics

Other Physics Topics

Fluid Mechanics and Acoustics

DOI

10.1109/ELMAR49956.2020.9219026

More information

Latest update

1/3/2024 9