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首页> 外文期刊>Results in Physics >Enhancing absorption properties of composite nanosphere and nanowire arrays by localized surface plasmon resonance shift
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Enhancing absorption properties of composite nanosphere and nanowire arrays by localized surface plasmon resonance shift

机译:通过局部表面等离子体激元共振位移增强复合纳米球和纳米线阵列的吸收性能

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Highlights ? Variation of inner radius can tune the absorption efficiency factors monotonously. ? An optimal outer radius exists for maximizing the absorption efficiency factors. ? Variation of inner radius can widen the absorption spectrums for the arrays. ? Absorptance tends to increase with decreasing inner radius or particle spacing. ? Multiple absorption peaks for the arrays are tuned by the resonance shifts. Abstract Nanoparticles with nonmetallic core and metallic shell can improve the spectral solar absorption efficiency for traditional working fluids, due to the localized surface plasmon resonance (LSPR) effect exists at the surfaces of these core-shell composite nanoparticles. In this work, the effect of geometry and material, and hence the LSPR effect, on the optical absorption properties of core-shell nanostructures was numerically demonstrated by the finite difference time domain method. The nanostructures were formed by varying the inner and outer radii of the composite nanospheres and nanowires and by changing the particle spacing for their arrays. The result indicates that varying the inner radius itself can tune the absorption efficiency factors of the nanostructures monotonously, while an optimal outer radius may exist for maximizing the absorption efficiency factors. It also shows that varying the inner radius itself can widen the absorption spectrums for the arrays, but the absorptance tends to increase with decreasing inner radius or particle spacing. Meanwhile, the second absorption peaks may be observed for nanowires or nanosphereanowire arrays, which can be tuned by the resonance shifts induced by the change of either inner or outer radius and hence the LSPR effect. The coupled LSPR effect under studied can be efficiently utilized for tuning the optical absorption properties of nanoparticles used in many applications including photothermal conversion, and perspective also exists for many other applications including surface-enhanced Raman spectroscopy (SERS) enhancement.
机译:强调 ?内半径的变化可以单调调整吸收效率因子。 ?存在最佳外半径以最大化吸收效率因子。 ?内半径的变化可以加宽阵列的吸收光谱。 ?吸收率倾向于随着内半径或颗粒间距的减小而增加。 ?阵列的多个吸收峰通过共振位移来调谐。摘要具有非金属核和金属壳的纳米粒子可提高传统工作流体的光谱太阳吸收效率,这是由于这些核-壳复合纳米粒子的表面存在局部表面等离子体共振(LSPR)效应。在这项工作中,通过有限差分时域法数值证明了几何形状和材料的影响,以及由此而来的LSPR效应,对核-壳纳米结构的光吸收性能的影响。通过改变复合纳米球和纳米线的内半径和外半径以及通过改变其阵列的颗粒间距来形成纳米结构。结果表明,改变内半径本身可以单调地调节纳米结构的吸收效率因子,而可以存在最优的外半径以最大化吸收效率因子。它还表明,改变内半径本身可以加宽阵列的吸收光谱,但是吸收率会随着内半径或颗粒间距的减小而增加。同时,可以观察到纳米线或纳米球/纳米线阵列的第二吸收峰,其可以通过由内半径或外半径的变化以及因此的LSPR效应引起的共振位移来调谐。所研究的耦合LSPR效应可以有效地用于调节包括​​光热转换在内的许多应用中使用的纳米颗粒的光吸收特性,并且对于包括表面增强拉曼光谱(SERS)增强在内的许多其他应用也存在着前景。

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