Duangmanee Suriya, Poo-Arporn Yingyot, Janphuang Pattanaphong, Leuasoongnoen Pimchanok, Tonlublao Surangrat, Kamonpha Phitsamai, Saengchai Natawan, Chanlek Narong, Saisombat Chatree, Kidkhunthod Pinit, Poo-Arporn Rungtiva P
Biological Engineering Program, Faculty of Engineering, King Mongkut's University of Technology Thonburi, Bangkok 10140, Thailand.
Synchrotron Light Research Institute, Nakhon Ratchasima 30000, Thailand.
Nanomaterials (Basel). 2022 Apr 9;12(8):1285. doi: 10.3390/nano12081285.
In this work, a simple, facile growth approach for a vertically aligned ZnO thin film is fabricated and its application towards methane gas sensors is demonstrated. ZnO thin film was prepared by a combination of hydrothermal and sputtering methods. First, a ZnO seed layer was prepared on the substrate through a sputtering technique, then a ZnO nanorod was fabricated using a hydrothermal method. The surface morphology of the ZnO film was observed by scanning electron microscopy (SEM). A ZnO nanorod coated on the dense seed layer is clearly visible in the SEM image. The average size of the hexagonal-shaped ZnO rod was around 50 nm in diameter, with a thickness of about 1 mm. X-ray absorption near-edge structures (XANES) were recorded to characterize the structural properties of the prepared film. The obtained normalized Zn K-edge XANES of the film showed the characteristic features of ZnO, which agreed well with the standard ZnO sample. The measurement of Zn K-edge XANES was performed simultaneously with the sensing response. The results showed a good correlation between sensor response and ZnO structure under optimal conditions.
在这项工作中,制备了一种用于垂直排列的ZnO薄膜的简单、便捷的生长方法,并展示了其在甲烷气体传感器方面的应用。通过水热法和溅射法相结合制备了ZnO薄膜。首先,通过溅射技术在衬底上制备ZnO籽晶层,然后使用水热法制备ZnO纳米棒。通过扫描电子显微镜(SEM)观察ZnO薄膜的表面形貌。在SEM图像中可以清楚地看到涂覆在致密籽晶层上的ZnO纳米棒。六边形ZnO棒的平均直径约为50nm,厚度约为1mm。记录X射线吸收近边结构(XANES)以表征所制备薄膜的结构特性。所获得的薄膜的归一化Zn K边XANES显示出ZnO的特征,与标准ZnO样品吻合良好。在进行传感响应的同时进行Zn K边XANES的测量。结果表明,在最佳条件下,传感器响应与ZnO结构之间具有良好的相关性。