利用真空热蒸发技术研究作为气体传感器应用的氧化锌:二氧化锡薄膜的结构、光学和电学特性

Abdulkareem A. Hussain, Qahtan N. Abdullah
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引用次数: 0

摘要

本研究采用真空热蒸发技术在玻璃基底上制备了纯氧化锌薄膜和掺杂二氧化硒氮磷的氧化锌薄膜。XRD 图谱显示 ZnO 为六方结构,优先取向为 (002)。在所有掺杂比例下,纳米结构薄膜中的 Zn、O 和 Sn 的浓度都不同。利用扫描电子显微镜图像,通过表面薄膜的横截面(约 144 nm)计算出薄膜的厚度和表面形态。FE-SEM 图像证实了氧化锌纳米结构以及添加二氧化硫后的形态变化。沉积的纯薄膜致密而有结构;而 ZnO:SnO2(1.5% wt)则是一种纳米结构。所制备薄膜的光带隙和透射率随着二氧化锰掺杂比例的增加而增加,而吸收光谱则有所下降。制备的薄膜在两种不同的工作温度(100 和 200 ºC)下对气体传感表现出不同的响应,在最佳温度(200 ºC)下,掺杂率提高了气体的传感值。
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Studying the Structural, Optical and Electrical Properties of ZnO: SnO2 Thin Films as an Application of a Gas Sensor Using Vacuum Thermal Evaporation Technique
In this work, thermal evaporation in vacuum technique was used to prepare the ZnO thin films as pure and doped with SnO2 NPs on glass substrates. The XRD pattern showed the hexagonal structure of ZnO with (002) preferred orientation. The EDX technique was used to investigate the contents of the film elements prepared which consisted of Zn, Sn and O. The concentration of Zn, O and Sn in the nanostructure films was different for all doping ratios. Thickness and morphology surface of the films were calculated from cross section of the surface films (~144 nm) using scanning electron microscopy images. The FE-SEM images confirmed the ZnO nanostructures and modifications of the morphology when adding SnO2. The pure film deposited was dense and structured; while ZnO: SnO2 (1,5 % wt) was a nanostructure. The optical band gap and Transmittance increased with the increase in the doping ratio of SnO2, while the absorption spectrum decreased for the prepared thin films. The prepared films showed different responses to the gas sensing at two different operating temperatures (100, 200 ºC) and the doping ratio increased the sensor value of the gas at an optimum temperature of (200 ºC).
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