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Ultrafast dynamics and near-field optics of light transmission through plasmonic crystals

机译:超快动力学和通过等离子晶体传输光的近场光学

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Using near-field scanning optical microscopy and ultrafast laser spectroscopy, we study the linear optical properties of subwavelength nanoslit and nanohole arrays in metal films, which are prototype structures for novel plasmonic crystals. Near-field microscopy provides direct evidence for surface plasmon polariton (SPP) excitation and allows for spatial imaging of the corresponding SPP modes. By employing spectral interferometry with ultrashort 11-fs light pulses, we directly reconstruct the temporal structure of the electric field of these pulses as they are transmitted through the metallic nanostructures. The analysis of these data allows for a quantitative extraction of the plasmonic band structure and the radiative damping of the corresponding SPP modes. Clear evidence for plasmonic band gap formation is given. Our results reveal that the coherent coupling between different SPP modes can result in a pronounced suppression of radiative SPP damping, increasing the SPP lifetime from 30 fs to more than 200 fs. These findings are relevant for optimizing and manipulating the optical properties of novel nano-plasmonic devices.
机译:使用近场扫描光学显微镜和超快激光光谱,我们研究了金属膜中亚波长纳米狭缝和纳米孔阵列的线性光学性质,这是新型等离激元晶体的原型结构。近场显微镜为表面等离振子极化(SPP)激发提供了直接证据,并允许对相应SPP模式进行空间成像。通过使用具有超短11-fs光脉冲的光谱干涉技术,我们可以直接重建这些脉冲在金属纳米结构中传输时电场的时间结构。这些数据的分析可以定量提取等离激元能带结构和相应SPP模式的辐射阻尼。给出了等离子体激元带隙形成的明确证据。我们的结果表明,不同SPP模式之间的相干耦合可以显着抑制辐射SPP阻尼,从而将SPP寿命从30 fs增加到200 fs以上。这些发现与优化和操纵新型纳米等离子体装置的光学特性有关。

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