Akinoglu Goekalp Engin, Akinoglu Eser Metin, Kempa Krzysztof, Hutchison James Andell
School of Chemistry, University of Melbourne Parkville Victoria 3010 Australia
Advanced Materials & BioEngineering Research Centre (AMBER), The School of Chemistry, Trinity College Dublin, The University of Dublin Dublin 2 Ireland.
Nanoscale Adv. 2021 Oct 12;3(24):6925-6933. doi: 10.1039/d1na00647a. eCollection 2021 Dec 7.
Plasmonic metasurfaces have important applications in life science, optics, and catalysis. However, their industrial usage is limited by the challenges of high throughput nanofabrication. A promising solution is the transfer of a pattern into a substrate using block copolymers, nanostructured stamps or molds to create binary, three dimensional templates, which can then be decorated with plasmonically active metals. Here, we report on the optical properties of quasi-Babinet complementary arrays in the non-retarded regime investigated by finite-difference time-domain simulations. The structures consist of a nanopillar support, which is covered with metal disks on top of the pillars and a quasi-Babinet complementary hole array film at the base of the pillars. Strong vertical plasmonic coupling occurs for small separation distances of the plasmonic slabs. We present a comprehensive study of the near and far-field properties of such vertically coupled plasmonic arrays varying their critical geometric dimension and the employed metals with their intrinsic plasmonic material properties. In particular, we consider gold, silver, copper, aluminum, nickel, and palladium. Furthermore, the effect of the refractive index of the nanopillar support between the range of = 1.4 to = 3.4 is investigated. The plasmonic slabs show tunable extraordinary transmission and large electric near-field enhancements, which are strongly dependent on the employed material and geometry. Further, we show that the templates are suitable for plasmonic heterostructures commonly used in plasmon-enhanced photocatalysis.
表面等离激元超表面在生命科学、光学和催化领域有着重要应用。然而,其工业应用受到高通量纳米制造挑战的限制。一种有前景的解决方案是使用嵌段共聚物、纳米结构印章或模具将图案转移到基底上,以创建二元三维模板,然后用具有表面等离激元活性的金属进行修饰。在此,我们报告通过时域有限差分模拟研究的非延迟区域中准巴比涅互补阵列的光学特性。这些结构由一个纳米柱支撑体组成,柱顶覆盖有金属圆盘,柱基有一个准巴比涅互补孔阵列薄膜。对于表面等离激元平板的小间距,会发生强烈的垂直表面等离激元耦合。我们对这种垂直耦合表面等离激元阵列的近场和远场特性进行了全面研究,改变其关键几何尺寸以及使用具有固有表面等离激元材料特性的金属。特别是,我们考虑了金、银、铜、铝、镍和钯。此外,还研究了纳米柱支撑体在折射率范围从1.4到3.4之间的影响。表面等离激元平板表现出可调谐的超常透射和大的电近场增强,这强烈依赖于所使用的材料和几何结构。此外,我们表明这些模板适用于表面等离激元增强光催化中常用的表面等离激元异质结构。