School of Chemical Engineering, The University of Adelaide , Engineering North Building, 5005 Adelaide, Australia.
ACS Appl Mater Interfaces. 2015 Sep 9;7(35):19816-24. doi: 10.1021/acsami.5b05904. Epub 2015 Aug 26.
In this study, we produce for the first time biomimetic films and microsized particles based on nanoporous anodic alumina distributed Bragg reflectors (NAA-DBRs) by a rational galvanostatic pulse-anodization approach. These biomimetic photonic structures can feature a broad range of vivid bright colors, which can be tuned across the UV-visible spectrum by engineering their nanoporous structure through different anodization parameters. The effective medium of NAA-DBRs films is systematically assessed as a function of the anodization period, the anodization temperature, and the current density ratio by reflectometric interference spectroscopy (RIfS). This analysis makes it possible to establish the most sensitive structure toward changes in its effective medium. Subsequently, specific detection of vitamin C molecules is demonstrated. The obtained results reveal that NAA-DBRs with optimized structure can achieve a low limit of detection for vitamin C molecules as low as 20 nM, a sensitivity of 227±4 nm μM(-1), and a linearity of 0.9985. Finally, as proof of concept, we developed a new photonic nanomaterial based on NAA-DBR microsized particles, which could provide new opportunities to produce microsized photonic analytical tools.
在这项研究中,我们首次通过合理的恒电流脉冲阳极氧化方法,以纳米多孔阳极氧化铝分布布拉格反射器(NAA-DBR)为基础,制备出仿生薄膜和微球。这些仿生光子结构可以呈现出广泛的鲜艳明亮色彩,通过不同的阳极氧化参数来设计其纳米多孔结构,可以在紫外-可见光谱范围内进行调节。通过反射干涉光谱(RIfS),我们系统地评估了 NAA-DBR 薄膜的有效介质作为阳极氧化周期、阳极氧化温度和电流密度比的函数。这种分析使得确定对其有效介质变化最敏感的结构成为可能。随后,我们展示了对维生素 C 分子的特异性检测。所得结果表明,优化结构的 NAA-DBR 可以实现对维生素 C 分子的低检测限,低至 20 nM,灵敏度为 227±4 nm μM(-1),线性度为 0.9985。最后,作为概念验证,我们开发了一种基于 NAA-DBR 微球的新型光子纳米材料,这为生产微光子分析工具提供了新的机会。