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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Plasmonic three-dimensional dimpled array from highly ordered self-assembled liquid crystal defectst
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Plasmonic three-dimensional dimpled array from highly ordered self-assembled liquid crystal defectst

机译:来自高度有序的自组装液晶缺陷的等离子三维凹坑阵列

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摘要

Various lithography techniques have been developed to fabricate well-defined and small feature sized metallic patterned structures, to utilize the plasmonic property or hot spot effect. In this study, a dimple-shaped plasmonic array was prepared from a self-assembled liquid crystal (LC) defect structure, the so-cailed toric focal conic domains (TFCDs). This uniform and well-ordered micro-dimple array was replicated by a UV-curable photopolymer (NOA63) and polydimethylsiloxane (PDMS) which resulted in conical and dimpled arrays on the polymer molds, respectively. A thin gold (Au) layer (40 nm) was deposited on the polymer replica molds (NOA63 and PDMS) and the Au dimpled array showed a good field enhancement phenomenon from QD fluorescence signal observation. Also, FDTD simulation analysis was carried out to support electromagnetic field behavior near each geometry (conical and dimpled structures). The dimple-shaped TFCD array is advantageous as a plasmonic template due to the geometrical effect. Also this self-assembly approach is a cost-effective, fast, and simple process. Furthermore, the dimpled configuration has the potential to be applied for collecting nano- or microsized materials, which might be useful for enhanced plasmonic sensing in the biological and chemical field of studies.
机译:已经开发出各种光刻技术来制造轮廓分明的,小特征尺寸的金属图案化结构,以利用等离子体特性或热点效应。在这项研究中,从自组装液晶(LC)缺陷结构,即复曲面复曲面焦点圆锥域(TFCD),制备了一个酒窝形等离子体阵列。通过紫外线可固化光敏聚合物(NOA63)和聚二甲基硅氧烷(PDMS)可以复制这种均匀且有序的微凹痕阵列,从而分别在聚合物模具上形成圆锥形和凹坑形阵列。薄的金(Au)层(40 nm)沉积在聚合物复制模具(NOA63和PDMS)上,Au凹坑阵列通过QD荧光信号观察显示出良好的场增强现象。此外,进行了FDTD仿真分析,以支持每种几何形状(圆锥形和凹坑结构)附近的电磁场行为。由于几何效应,凹坑形TFCD阵列作为等离激元模板是有利的。同样,这种自组装方法也是一种经济高效,快速且简单的过程。此外,凹坑状的配置有可能用于收集纳米或微米级的材料,这可能对增强生物和化学研究领域中的等离激元感测有用。

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