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Oxygen Optical Sensing in Gas and Liquids with Nanostructured ZnO Thin Films Based on Exciton Emission Detection

机译:基于激子发射检测的纳米结构ZnO薄膜在气体和液体中的氧光学传感

摘要

Transparent nanocolumnar porous ZnO thin films have been prepared by plasma-enhanced chemical vapor deposition. By controlling the H2/O2 ratio in the plasma gas, the deposition conditions were optimized to obtain an intense exciton emission at around 381 nm and virtually no luminescence in the visible region associated with electronic states in the gap. The intensity of the exciton band varied significantly and reversibly with the partial pressure of oxygen in the environment. This behavior and its variations with temperature and water vapor sustain the use of these thin films as photonic sensors of oxygen. Further experiments in liquid water show that fluorescence intensity also varies with the amount of dissolved oxygen even for concentrations lower than 0.02 mg/L where commercial oxygen galvanic sensors show limited sensitivity. These results and the use of ZnO as photonic sensor of oxygen are discussed by assuming a classical mechanism involving the photoactivated adsorption of oxygen when this oxide is irradiated with UV light during its fluorescence interrogation.
机译:通过等离子体增强化学气相沉积制备了透明的纳米柱状多孔ZnO薄膜。通过控制等离子气体中的H2 / O2比,可以优化沉积条件,以在381 nm处获得强烈的激子发射,并且在与间隙中的电子态相关的可见光区域几乎不发光。激子带的强度随环境中氧气的分压而显着且可逆地变化。这种行为及其随温度和水蒸气的变化维持了将这些薄膜用作氧气的光子传感器。在液态水中进行的进一步实验表明,即使对于浓度低于0.02 mg / L的荧光灯,荧光强度也会随着溶解氧的量而变化,而商用氧气电传感器的灵敏度有限。通过假设一种经典机理,讨论了这些结果以及将ZnO用作氧气的光子传感器,该机理涉及在荧光质询期间用UV光照射该氧化物时涉及光活化吸附氧的问题。

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