Chen Yuting, Santos Abel, Wang Ye, Kumeria Tushar, Wang Changhai, Li Junsheng, Losic Dusan
School of Chemical Engineering, The University of Adelaide, Engineering North Building, 5005 Adelaide, Australia.
Nanoscale. 2015 May 7;7(17):7770-9. doi: 10.1039/c5nr00369e.
Herein, we present a systematic study on the development, optical optimization and sensing applicability of colored photonic coatings based on nanoporous anodic alumina films grown on aluminum substrates. These optical nanostructures, so-called distributed Bragg reflectors (NAA-DBRs), are fabricated by galvanostatic pulse anodization process, in which the current density is altered in a periodic manner in order to engineer the effective medium of the resulting photonic coatings. As-prepared NAA-DBR photonic coatings present brilliant interference colors on the surface of aluminum, which can be tuned at will within the UV-visible spectrum by means of the anodization profile. A broad library of NAA-DBR colors is produced by means of different anodization profiles. Then, the effective medium of these NAA-DBR photonic coatings is systematically assessed in terms of optical sensitivity, low limit of detection and linearity by reflectometric interference spectroscopy (RIfS) in order to optimize their nanoporous structure toward optical sensors with enhanced sensing performance. Finally, we demonstrate the applicability of these photonic nanostructures as optical platforms by selectively detecting gold(iii) ions in aqueous solutions. The obtained results reveal that optimized NAA-DBR photonic coatings can achieve an outstanding sensing performance for gold(iii) ions, with a sensitivity of 22.16 nm μM(-1), a low limit of detection of 0.156 μM (i.e. 30.7 ppb) and excellent linearity within the working range (0.9983).
在此,我们对基于在铝基板上生长的纳米多孔阳极氧化铝膜的彩色光子涂层的开发、光学优化和传感适用性进行了系统研究。这些光学纳米结构,即所谓的分布式布拉格反射器(NAA-DBRs),是通过恒电流脉冲阳极氧化工艺制造的,在该工艺中,电流密度以周期性方式改变,以设计所得光子涂层的有效介质。制备好的NAA-DBR光子涂层在铝表面呈现出明亮的干涉色,通过阳极氧化曲线可在紫外-可见光谱范围内随意调节。通过不同的阳极氧化曲线产生了一系列广泛的NAA-DBR颜色。然后,通过反射干涉光谱法(RIfS)从光学灵敏度、检测下限和线性度方面对这些NAA-DBR光子涂层的有效介质进行系统评估,以优化其纳米多孔结构,使其成为具有增强传感性能的光学传感器。最后,我们通过选择性检测水溶液中的金(III)离子,证明了这些光子纳米结构作为光学平台的适用性。所得结果表明,优化后的NAA-DBR光子涂层对金(III)离子具有出色的传感性能,灵敏度为22.16 nm μM⁻¹,检测下限为0.156 μM(即30.7 ppb),在工作范围内具有出色的线性度(0.9983)。