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The effect of anodization temperature on optical properties of nanoporous anodic alumina (NAA) films

机译:阳极氧化温度对纳米多孔阳极氧化铝(NAA)薄膜光学性能的影响

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摘要

Nanoporous anodic alumina (NAA), produced by aluminum anodization presents interesting optical effects in luminescence property exhibiting waveguides or Fabiy-Perot interference. This phenomenon, which is used as transducer response in optical sensors, depends on morphological characteristics of the NAA films, such as pore diameter, inter-pore distance and film thickness. In this work, the effect of electrolyte temperature on NM morphology was investigated and, consequently, how this effect shaped the interference property. For this, all anodizing experimental conditions were kept constant while the electrolyte temperature was changed (5, 10, 15, 20 and 25 degrees C). It was observed an increase in the minimum and stationary current density values during anodization as the electrolyte temperature increased, which were correlated to enlargement of porous oxide layer, since pore diameter, inter-pores distance and porosity remained constant for all studied temperatures. The photoluminescence (PL) spectra showed an increase in the number of fringes and an amplitude decrease with the increase of electrolyte temperature. NM film thickness was evaluated using optical and morphological parameters and compared to values in the literature. A brief discussion of the results regarding the ratio of film thickness and pore diameter (L/d(p)) was performed to validate the NAA films with better waveguides property to be used as a platform for optical sensing applications. (C) 2016 Elsevier B.V. All rights reserved.
机译:通过铝阳极氧化生产的纳米多孔阳极氧化铝(NAA)在发光特性方面表现出有趣的光学效果,表现出波导或Fabiy-Perot干涉。这种现象在光学传感器中用作换能器响应,取决于NAA膜的形态特征,例如孔径,孔间距离和膜厚。在这项工作中,研究了电解质温度对NM形态的影响,并因此研究了这种影响如何影响干涉性能。为此,在改变电解质温度(5、10、15、20和25℃)的同时,所有阳极氧化实验条件保持恒定。由于在所有研究温度下孔直径,孔间距离和孔隙率保持恒定,因此观察到在阳极氧化过程中,最小和固定电流密度值随电解液温度的升高而增加,这与多孔氧化物层的增大相关。光致发光(PL)光谱显示条纹数量增加,幅度随着电解液温度的升高而降低。使用光学和形态学参数评估NM膜厚度,并与文献中的值进行比较。简要讨论了有关膜厚与孔径比(L / d(p))的结果,以验证具有更好波导特性的NAA膜可用作光学传感应用的平台。 (C)2016 Elsevier B.V.保留所有权利。

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