Acosta Laura K, Bertó-Roselló Francesc, Xifre-Perez Elisabet, Santos Abel, Ferré-Borrull Josep, Marsal Lluis F
Departament d'Enginyeria Electrònica, Elèctrica i Automàtica , Universitat Rovira i Virgili , Avinguda Països Catalans 26 , 43007 Tarragona , Spain.
School of Chemical Engineering , The University of Adelaide , Adelaide , South Australia 5005 , Australia.
ACS Appl Mater Interfaces. 2019 Jan 23;11(3):3360-3371. doi: 10.1021/acsami.8b19411. Epub 2019 Jan 10.
This study presents the development and optical engineering of stacked nanoporous anodic alumina gradient-index (NAA-GIFs) filters with tunable multispectral photonic stopbands for sensing applications. The structure of these photonic crystals (PC) is formed by stacked layers of NAA produced with sinusoidally modified effective medium. The progressive modification of the sinusoidal period during the anodization process enables the generation and precise tuning of the characteristic photonic stopbands (PSB) (i.e., one per sinusoidal period in the anodization profile) of these PC structures. Four types of NAA-GIFs featuring three distinctive PSBs positioned within the visible spectral region are developed. The sensitivity of the effective medium of these NAA-GIFs is systematically assessed by measuring spectral shifts in the characteristic PSBs upon infiltration of their nanoporous structure with analytical solutions of d-glucose with several concentrations (0.025-1 M). This study provides new insights into the intrinsic relationship between the nanoporous architecture of these PCs and their optical properties, generating opportunities to fabricate advanced optical sensing systems for high-throughput and multiplexed detection of analytes in a single sensing platform.
本研究展示了用于传感应用的具有可调谐多光谱光子阻带的堆叠纳米多孔阳极氧化铝梯度折射率(NAA - GIFs)滤光片的开发及光学工程。这些光子晶体(PC)的结构由采用正弦调制有效介质制备的NAA堆叠层构成。阳极氧化过程中正弦周期的逐步改变能够产生并精确调谐这些PC结构的特征光子阻带(PSB)(即阳极氧化轮廓中每个正弦周期一个PSB)。开发了四种类型的NAA - GIFs,其在可见光谱区域内具有三个不同的PSB。通过测量用几种浓度(0.025 - 1 M)的d - 葡萄糖分析溶液渗透其纳米多孔结构时特征PSB中的光谱位移,系统地评估了这些NAA - GIFs有效介质的灵敏度。本研究为这些PC的纳米多孔结构与其光学性质之间的内在关系提供了新的见解,为在单个传感平台上制造用于高通量和多重检测分析物的先进光学传感系统创造了机会。