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调控介电纳米多孔光子晶体中的塔姆表面等离子体共振

Tailoring Tamm Plasmon Resonances in Dielectric Nanoporous Photonic Crystals.

作者信息

Tran Huong Nguyen Que, Tran Khoa Nhu, Gunenthiran Satyathiran, Wang Juan, Law Cheryl Suwen, Lim Siew Yee, Gary Lim Yong Cheow, Abell Andrew D, Marsal Lluis F, Santos Abel

机构信息

School of Chemical Engineering, The University of Adelaide, South Australia 5005, Australia.

Institute for Photonics and Advanced Sensing, The University of Adelaide, South Australia 5005, Australia.

出版信息

ACS Appl Mater Interfaces. 2024 Mar 6;16(9):11787-11799. doi: 10.1021/acsami.3c16981. Epub 2024 Feb 23.

Abstract

The fields of plasmonics and photonic crystals (PCs) have been combined to generate model light-confining Tamm plasmon (TMM) cavities. This approach effectively overcomes the intrinsic limit of diffraction faced by dielectric cavities and mitigates losses associated with the inherent properties of plasmonic materials. In this study, nanoporous anodic alumina PCs, produced by two-step sinusoidal pulse anodization, are used as a model dielectric platform to establish the methodology for tailoring light confinement through TMM resonances. These model dielectric mirrors feature highly organized nanopores and narrow bandwidth photonic stopbands (PSBs) across different positions of the spectrum. Different types of metallic films (gold, silver, and aluminum) were coated on the top of these model dielectric mirrors. By structuring the features of the plasmonic and photonic components of these hybrid structures, the characteristics of TMM resonances were studied to elucidate effective approaches to optimize the light-confining capability of this hybrid TMM model system. Our findings indicate that the coupling of photonic and plasmonic modes is maximized when the PSB of the model dielectric mirror is broad and located within the midvisible region. It was also found that thicker metal films enhance the quality of the confined light. Gas sensing experiments were performed on optimized TMM systems, and their sensitivity was assessed in real time to demonstrate their applicability. Ag films provide superior performance in achieving the highest sensitivity ( = 0.038 ± 0.001 nm ppm) based on specific binding interactions between thiol-containing molecules and metal films.

摘要

等离子体激元学和光子晶体(PCs)领域已被结合起来,以生成模型光限制塔姆等离子体激元(TMM)腔。这种方法有效地克服了介电腔所面临的固有衍射极限,并减轻了与等离子体材料固有特性相关的损耗。在本研究中,通过两步正弦脉冲阳极氧化制备的纳米多孔阳极氧化铝光子晶体被用作模型介电平台,以建立通过TMM共振来定制光限制的方法。这些模型介电镜具有高度有序的纳米孔和跨越光谱不同位置的窄带宽光子带隙(PSB)。在这些模型介电镜顶部涂覆了不同类型的金属薄膜(金、银和铝)。通过构建这些混合结构的等离子体激元和光子成分的特征,研究了TMM共振的特性,以阐明优化这种混合TMM模型系统光限制能力的有效方法。我们的研究结果表明,当模型介电镜的光子带隙较宽且位于中可见光区域时,光子和等离子体激元模式的耦合最大化。还发现较厚的金属薄膜可提高受限光的质量。对优化后的TMM系统进行了气敏实验,并实时评估了它们的灵敏度,以证明其适用性。基于含硫醇分子与金属薄膜之间的特异性结合相互作用,银薄膜在实现最高灵敏度( = 0.038 ± 0.001 nm ppm)方面表现出卓越性能。

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