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Spatial frequency response of nanocomposite holographic gratings

机译:纳米复合全息光栅的空间频率响应

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We investigate the spatial frequency response of a volume grating recorded in a ZrO_2 nanoparticle-dispersed nanocomposite. We experimentally find that there exists the optimum recording intensity to maximize the saturated refractive index modulation amplitude of a nanocomposite grating recorded at short and long grating spacing. A strong parametric relationship between grating spacing and recording intensity is seen and an increase in the saturated refractive index modulation amplitude at shorter grating spacing (< 0.5 μn)can be obtained by using higher recording intensities than those at longer grating spacing. Such a trend can be qualitatively explained by a phenomenological model used for holographic polymer-dispersed liquid crystal gratings. We also describe another method for the improvement of the high spatial frequency response by co-doping of thiol monomer that acts as a chain-transfer agent.
机译:我们研究了在ZrO_2纳米粒子分散的纳米复合材料中记录的体积光栅的空间频率响应。我们通过实验发现,存在最佳的记录强度,以最大化在短和长光栅间距记录的纳米复合光栅的饱和折射率调制幅度。看到光栅间距和记录强度之间的强的参数关系,并且可以通过使用更高的记录强度来获得比较较长的光栅间隔的饱和折射率调制幅度的饱和折射率调制幅度的增加。这种趋势可以通过用于全息聚合物分散的液晶光栅的现象学模型来定性解释。我们还通过用作链转移剂的硫醇单体来描述改善高空间频率响应的另一种方法。

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