Nunes Frederico Dias, Borges Ben-Hur Viana, Weiner John
Grupo de Engenharia da Informação, DES, CP.7.800 – Recife-SP, CEP 50670-000, UFPE, and IFSC-INOF, USP, CP. 369, São Carlos-SP,CEP 13560-970, Brazil.
Opt Express. 2012 Jul 2;20(14):15679-91. doi: 10.1364/OE.20.015679.
In this paper we analyze the problem of light-matter interaction when absorptive resonances are imbedded in the material dispersion. We apply an improved approach to aluminum (Al) in the optical frequency range to investigate the impact of these resonances on the operating characteristics of Al-based nanoscale devices. Quantities such as group velocity, stored energy density, and energy velocity, normally obtained using a single resonance model [Wave Propagation and Group Velocity (Academic Press, 1960), Nat. Mater. 11, 208 (2012)], are now accurately calculated regardless of the medium adopted. We adapt the Loudon approach [Nat. Mater. 11, 208 (2012)] to media with several optical resonances and present the details of the extended model. We also show pertinent results for Al-based metal-dielectric-metal (MDM) waveguides, around spectral resonances. The model delineated here can be applied readily to any metal accurately characterized by Drude-Lorentz spectral resonance features.
在本文中,我们分析了当吸收共振嵌入材料色散中时光与物质相互作用的问题。我们在光频范围内对铝(Al)应用一种改进方法,以研究这些共振对基于Al的纳米级器件工作特性的影响。诸如群速度、储能密度和能量速度等通常使用单共振模型[《波传播与群速度》(学术出版社,1960年),《自然·材料》11, 208 (2012)]获得的量,现在无论采用何种介质都能精确计算。我们将劳登方法[《自然·材料》11, 208 (2012)]应用于具有多个光学共振的介质,并给出扩展模型的详细信息。我们还展示了基于Al的金属 - 介质 - 金属(MDM)波导在光谱共振附近的相关结果。这里所描述的模型可以很容易地应用于任何由德鲁德 - 洛伦兹光谱共振特征精确表征的金属。