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Generalized local analogue model for nonlocal plasmonic nanostructures based on multiple-fluid hydrodynamic framework

DOI:10.1088/1361-6463/ab8509 期刊:Journal of Physics D: Applied Physics 出版年份:2020 更新时间:2025-09-23 15:21:01
摘要: The control and manipulation of light waves is a long-standing ambition with profound implications for the development of science and technology. Recent advances in nanofabrication allow for a rapid progress in engineering plasmonic nano-devices which collect and concentrate light or electromagnetic waves into a subwavelength region, enabling various applications in nanophotonics, such as bio-sensor with enhanced sensitivity, plasmonic laser, plasmonic colors and quantum plasmonics, to name a few. Spatial dispersion plays a critical role in nanophotonics when small plasmonic structures with feature sizes of few nanometers are handled. Such nonlocality is typically considered in a hydrodynamic framework and generally requires solving coupled partial differential equations, and therefore is involved. We develop a generalized local analogue model to reflect the nonlocal effects of plasmonic structures and avoid the complicated analysis within the multiple-fluid hydrodynamic framework, where more than one kind of charge carriers is considered. We show that spatial nonlocality can be represented by simply replacing the nonlocal surface region with an in-situ artificial local dispersive film. With such an elegant and simple-to-use alternative, the conventional analysis and simulations in the local regime acquire nonlocal capability, sufficient for a quantitative description of various plasmonic structures in nanoscale, rendering a much simpler process and great practical advantages in the numerical treatment.
作者: Tianyu Dong,Ke Yin,Xiaoke Gao,Xikui Ma
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To develop a generalized local analogue model for nonlocal plasmonic nanostructures based on a multiple-fluid hydrodynamic framework to simplify the analysis and simulation of nonlocal effects in nanoscale plasmonic structures.

The study successfully develops a generalized local analogue model (GLAM) for nonlocal plasmonic nanostructures based on a multiple-fluid hydrodynamic framework. The GLAM simplifies the analysis and simulation of nonlocal effects by replacing the nonlocal surface region with an in-situ artificial local dispersive film. The model is validated through simulations of various geometries, demonstrating its capability to accurately reproduce nonlocal optical responses. The GLAM offers a practical and efficient alternative to the computationally intensive nonlocal simulations, with potential applications in the design and analysis of nanoscale plasmonic devices.

The GLAM is limited to reproducing the local parts of the reflection and transmission, meaning it may not fully capture the nonlocal response within the plasma region. Additionally, the model's accuracy depends on the thickness of the artificial cover layer being much smaller than the skin depth of the plasma and the curvature radius of the geometry surface.

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