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Nanostructural Engineering of Nanoporous Anodic Alumina for Biosensing Applications

机译:用于生物传感的纳米多孔阳极氧化铝的纳米结构工程

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Modifying the diameter of the pores in nanoporous anodic alumina opens new possibilities in the application of this material. In this work, we review the different nanoengineering methods by classifying them into two kinds: in situ and ex situ. Ex situ methods imply the interruption of the anodization process and the addition of intermediate steps, while in situ methods aim at realizing the in-depth pore modulation by continuous changes in the anodization conditions. Ex situ methods permit a greater versatility in the pore geometry, while in situ methods are simpler and adequate for repeated cycles. As an example of ex situ methods, we analyze the effect of changing drastically one of the anodization parameters (anodization voltage, electrolyte composition or concentration). We also introduce in situ methods to obtain distributed Bragg reflectors or rugate filters in nanoporous anodic alumina with cyclic anodization voltage or current. This nanopore engineering permits us to propose new applications in the field of biosensing: using the unique reflectance or photoluminescence properties of the material to obtain photonic barcodes, applying a gold-coated double-layer nanoporous alumina to design a self-referencing protein sensor or giving a proof-of-concept of the refractive index sensing capabilities of nanoporous rugate filters.
机译:改变纳米多孔阳极氧化铝中孔的直径为这种材料的应用开辟了新的可能性。在这项工作中,我们将不同的纳米工程方法分为两种:原位和异位。非原位方法意味着中断阳极氧化工艺并增加中间步骤,而原位方法旨在通过不断改变阳极氧化条件来实现深度的孔调节。非原位方法允许孔隙几何形状具有更大的通用性,而原位方法则更简单且足以进行重复循环。作为非原位方法的一个例子,我们分析了急剧改变一种阳极氧化参数(阳极氧化电压,电解质成分或浓度)的影响。我们还介绍了就地方法,以循环阳极氧化电压或电流在纳米多孔阳极氧化铝中获得分布式布拉格反射器或皱褶滤光片。这项纳米孔工程技术使我们能够在生物传感领域提出新的应用:利用材料的独特反射率或光致发光特性获得光子条形码,应用镀金的双层纳米多孔氧化铝设计自参考蛋白质传感器或提供纳米多孔波纹滤光片的折射率传感功能的概念验证。

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