基于金薄膜尺寸和量子尺寸效应的介电常数模型选择

IF 1 Q3 PHYSICS, MULTIDISCIPLINARY East European Journal of Physics Pub Date : 2023-09-04 DOI:10.26565/2312-4334-2023-3-44
Beloshenko, Konstantin, Riabenko, Iuliia, Shulga, Sergey, Makarovskii, Nikolai
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引用次数: 0

摘要

本文主要研究了含不同半径球形金纳米粒子的纳米结构的光学性质。探讨了金颗粒的光吸收光谱中介电常数模型的选择与粒子半径的关系。实验表明,颗粒金薄膜的吸收带发生分裂,形成第二吸收峰。第一个峰与等离子体共振现象有关,而第二个峰反映了金中能级的量子杂化。在直径约5-6纳米的颗粒中,量子效应优于尺寸效应。Mie理论给出了考虑球的光学特性的球上散射电磁场的严格解,但没有规定选择介质介电常数计算模型的标准。计算和实验均证实了采用Hampe-Shklyarevsky模型的金纳米颗粒的极限直径。同时,该模型仍不能预测等离子体吸收带的分裂。本文中提供的数据可用于在由生物层和金属纳米颗粒组成的复合介质中预先确定的局部场增强。所进行的研究提供了对空间定位的太赫兹高强度电磁场对量子点的影响的更深层次的理解。
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Permittivity Model Selection Based on Size and Quantum-Size Effects in Gold Films
The article is focused on optical properties of nanostructures containing spherical gold nanoparticles of various radii. We explore correlation between the particle radius and the choice of permittivity model applied to describe optical absorption spectra of gold granules. The experiments show splitting of the absorption band of granular gold films to form a second absorption peak. The first peak is associated with the phenomenon of plasmon resonance, while the second one reflects quantum hybridization of energy levels in gold. Quantum effects are shown to prevail over size effects at a granule diameter of about 5-6 nm. The Mie theory gives a rigorous solution for the scattered electromagnetic field on a sphere taking into account optical properties of the latter, however, it does not specify the criteria for selecting a model to calculate dielectric permittivity. Both calculations and experiments confirm the limiting diameter of gold nanoparticles where the Hampe-Shklyarevsky model is applied. Meanwhile, this model is still unable to predict the splitting of the plasma absorption band. The data presented in the article can be used for a predetermined local field enhancement in composite media consisting of a biolayer and metal nanoparticles. The conducted research provides a deeper understanding of the influence of a terahertz high-intensity electromagnetic field localized in the space on quantum dots.
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来源期刊
East European Journal of Physics
East European Journal of Physics PHYSICS, MULTIDISCIPLINARY-
CiteScore
1.10
自引率
25.00%
发文量
58
审稿时长
8 weeks
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