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Design and optimization of plasmonic-based metal-dielectricnanocomposite materials for energy applications

机译:基于等离子体基金属介质诺莫复合材料的设计与优化能源应用

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Metallic nanoparticles embedded in dielectrics permit enhanced absorption and/or scattering of light at specific wavelengths through excitation of plasmons, i.e. the quanta of coherent and collective oscillations of large concentrations of nearly free electrons. In order to maximize the potential of such enhanced absorption in useful tasks, such as the generation of carriers in photocatalysts and semiconductors, it is important to be able to predict and design plasmonic nanocomposites with desired wavelength-dependent optical absorption. Recently, a mixing approach formulated by Garcia and co-workers [Phys. Rev. B, 75, 045439 (2007)] has been successfully applied to model the experimentally measured broadband optical absorption for ternary nanocomposites containing alloys or mixtures of two metals (from Ag, Au or Cu) in SiO_2 dielectric. In this work we present the broadband optical behavior of an important optical coating dielectric, Si_3N_4, containing various configuration of nanoparticles of Al, Au, Ag, or Cu. The spectral behavior of various combinations of the metallic species in the dielectrics was optimized to show either broadband solar absorption or strong multiple plasmonic absorption peaks. The applications of such nanocomposite materials in solar energy harvesting and spectral sensing are also presented and discussed.
机译:嵌入在电介质中的金属纳米颗粒允许通过等离子体的激发产生特定波长的增强的吸收和/或散射光,即大浓度几乎自由电子的相干和集体振荡的量子。为了使有用任务中这种增强吸收的潜力最大化,例如光催化剂和半导体中的载体产生,重要的是能够预测和设计具有所需波长依赖性光学吸收的等离子体纳米复合材料。最近,由加西亚和同事制定的混合方法[物理。 Rev.B,75,045439(2007)已成功应用于模拟含有合金或两种金属的三元纳米复合材料的实验测量的宽带光学吸收(从Ag,Au或Cu)中的SiO_2电介质。在这项工作中,我们介绍了重要光学涂层电介质的宽带光学行为,Si_3N_4,含有A​​l,Au,Ag或Cu的纳米颗粒的各种构型。优化了电介质中金属物质的各种组合的光谱行为,以显示宽带太阳能吸收或强大等离子体吸收峰。还提出和讨论了这种纳米复合材料在太阳能收集和光谱传感中的应用。

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