...
首页> 外文期刊>Materials Horizons >?Large-area arrays of three-dimensional plasmonic subwavelength-sized structures from azopolymer surface-relief gratings
【24h】

?Large-area arrays of three-dimensional plasmonic subwavelength-sized structures from azopolymer surface-relief gratings

机译:偶氮聚合物表面浮雕光栅的三维等离子亚波长尺寸结构的大面积阵列

获取原文
获取原文并翻译 | 示例

摘要

The field of plasmonics allows for confinement and control of light on the nanoscale. Due to potentially strong resonant interactions that light can have with metal nanoscale structures, metals are a good candidate to tailor interactions with light, e.g., periodic arrays of subwavelength metal structures can support extremely narrow resonances and show enhanced transmission. The field of plasmonics has evolved fromusing simple geometries to the desire to create complex nanostructures for improved control. The availability of fabrication techniques that provide for complex structures, however, is paired with the seemingly inevitable increase in complexity of fabrication techniques themselves. We present a facile and scalable method for the fabrication of periodic arrays of unique three-dimensional subwavelength- sized structures such as tapered holes and pyramidically shaped subwavelength-sized particles. The procedure consists of holographic inscription of a two-dimensional surface-relief grating in an azobenzene-containing polymer film, evaporative gold deposition and broad-beamion milling of the relief structure. The method allows the fabrication of highly uniformarrayswith tunable lattice parameters and dimensions over large sample areas. The optical response of the fabricated structures is determined experimentally and through simulation, which confirm the unique plasmonic response of the structures. While the proposed fabrication method has clear benefits for plasmonics, it could easily be applied also in other fields, for example by using other coating materials.
机译:等离子体激元领域可以限制和控制纳米级的光。由于光与金属纳米级结构可能具有潜在的强共振相互作用,因此金属是调整与光相互作用的良好选择,例如亚波长金属结构的周期性阵列可以支持极窄的共振并显示出增强的透射率。等离子体技术领域已经从使用简单的几何结构演变为创建复杂的纳米结构以改善控制的需求。然而,提供复杂结构的制造技术的可用性与制造技术本身看似不可避免的复杂性增加相匹配。我们提出了一种简便且可扩展的方法,用于制造独特的三维亚波长尺寸结构(例如锥形孔和金字塔形亚波长尺寸粒子)的周期性阵列。该过程包括在含偶氮苯的聚合物薄膜中二维表面浮雕光栅的全息刻写,蒸发金沉积和浮雕结构的宽束铣削。该方法允许在大样本区域上制造具有可调晶格参数和尺寸的高度均匀的阵列。通过实验和仿真确定了所制造结构的光学响应,从而确认了结构的独特等离子体响应。尽管所提出的制造方法对等离激元学有明显的好处,但它也可以很容易地应用于其他领域,例如通过使用其他涂层材料。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号