Department of Physics, Southeast University, Nanjing 211189, People's Republic of China. Department of Physics and Materials Science, City University of Hong Kong, Tat Chee Avenue, Kowloon, Hong Kong, People's Republic of China.
Nanotechnology. 2017 Mar 10;28(10):105301. doi: 10.1088/1361-6528/aa596d. Epub 2017 Jan 31.
Ultra-thin anodic aluminum oxide (AAO) membranes are efficient templates for the fabrication of patterned nanostructures. Herein, a three-step etching method to control the morphology of AAO is described. The morphological evolution of the AAO during phosphoric acid etching is systematically investigated and a nonlinear growth mechanism during unsteady-state anodization is revealed. The thickness of the AAO can be quantitatively controlled from ∼100 nm to several micrometers while maintaining the tunablity of the pore diameter. The AAO membranes are robust and readily transferable to different types of substrates to prepare patterned plasmonic nanoarrays such as nanoislands, nanoclusters, ultra-small nanodots, and core-satellite superstructures. The localized surface plasmon resonance from these nanostructures can be easily tuned by adjusting the morphology of the AAO template. The custom AAO template provides a platform for the fabrication of low-cost and large-scale functional nanoarrays suitable for fundamental studies as well as applications including biochemical sensing, imaging, photocatalysis, and photovoltaics.
超薄膜状阳极氧化铝(AAO)是用于制备图案化纳米结构的有效模板。在此,描述了一种三步刻蚀方法来控制 AAO 的形态。系统研究了磷酸刻蚀过程中 AAO 的形态演变,并揭示了非稳态阳极氧化过程中的非线性生长机制。AAO 的厚度可以从约 100nm 定量控制到几微米,同时保持孔径的可调性。AAO 膜坚固耐用,可轻易转移到不同类型的基底上,以制备图案化等离子体纳米阵列,如纳米岛、纳米团簇、超小纳米点和核-卫星超结构。通过调整 AAO 模板的形态,可以轻松调节这些纳米结构的局域表面等离子体共振。定制的 AAO 模板为制造适用于基础研究以及生化传感、成像、光催化和光伏等应用的低成本、大规模功能纳米阵列提供了一个平台。