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用于实时无标记生物传感应用的纳米多孔阳极氧化铝波纹滤光片的结构和光学纳米工程

Structural and optical nanoengineering of nanoporous anodic alumina rugate filters for real-time and label-free biosensing applications.

作者信息

Kumeria Tushar, Rahman Mohammad Mahbubur, Santos Abel, Ferré-Borrull Josep, Marsal Lluís F, Losic Dusan

机构信息

School of Chemical Engineering, The University of Adelaide , Engineering North Building, 5005 Adelaide, Australia.

出版信息

Anal Chem. 2014 Feb 4;86(3):1837-44. doi: 10.1021/ac500069f. Epub 2014 Jan 22.

Abstract

In this study, we report about the structural engineering and optical optimization of nanoporous anodic alumina rugate filters (NAA-RFs) for real-time and label-free biosensing applications. Structurally engineered NAA-RFs are combined with reflection spectroscopy (RfS) in order to develop a biosensing system based on the position shift of the characteristic peak in the reflection spectrum of NAA-RFs (Δλpeak). This system is optimized and assessed by measuring shifts in the characteristic peak position produced by small changes in the effective medium (i.e., refractive index). To this end, NAA-RFs are filled with different solutions of d-glucose, and the Δλpeak is measured in real time by RfS. These results are validated by a theoretical model (i.e., the Looyenga-Landau-Lifshitz model), demonstrating that the control over the nanoporous structure makes it possible to optimize optical signals in RfS for sensing purposes. The linear range of these optical sensors ranges from 0.01 to 1.00 M, with a low detection limit of 0.01 M of d-glucose (i.e., 1.80 ppm), a sensitivity of 4.93 nm M(-1) (i.e., 164 nm per refractive index units), and a linearity of 0.998. This proof-of-concept study demonstrates that the proposed system combining NAA-RFs with RfS has outstanding capabilities to develop ultrasensitive, portable, and cost-competitive optical sensors.

摘要

在本研究中,我们报告了用于实时无标记生物传感应用的纳米多孔阳极氧化铝波纹滤光片(NAA-RFs)的结构工程和光学优化。对结构进行工程设计的NAA-RFs与反射光谱法(RfS)相结合,以开发一种基于NAA-RFs反射光谱中特征峰位置偏移(Δλpeak)的生物传感系统。通过测量有效介质(即折射率)的微小变化所产生的特征峰位置的偏移,对该系统进行了优化和评估。为此,在NAA-RFs中填充不同浓度的d-葡萄糖溶液,并通过RfS实时测量Δλpeak。这些结果通过理论模型(即Looyenga-Landau-Lifshitz模型)得到验证,表明对纳米多孔结构的控制使得为传感目的优化RfS中的光信号成为可能。这些光学传感器的线性范围为0.01至1.00 M,d-葡萄糖的检测下限低至0.01 M(即1.80 ppm),灵敏度为4.93 nm M(-1)(即每折射率单位164 nm),线性度为0.998。这项概念验证研究表明,所提出的将NAA-RFs与RfS相结合的系统在开发超灵敏、便携式且具有成本竞争力的光学传感器方面具有出色的能力。

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