Micro-Spectrometer-Based Interferometric Spectroscopy and Environmental Sensing with Zinc Oxide Thin Film

Micro Pub Date : 2024-05-01 DOI:10.3390/micro4020019
Ciao-Ming Tsai, Yu-Chen Hsu, Chang-Ting Yang, Wei-Yi Kong, Chitsung Hong, Cheng-Hao Ko
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Abstract

This study introduces a novel approach for analyzing thin film interference spectra by employing a micro-spectrometer equipped with a spectral chip. Focusing on zinc oxide (ZnO) thin films prepared via the sol–gel method, this research aims to explore the films’ physical properties through spectral analysis. After obtaining the interference spectrum of the ZnO thin films, the peak positions within the spectrum were cataloged. Mathematical simulation was used to adjust the refractive index and thickness of the films to match the simulated interference peak positions with the observed peak positions. The thickness of the prepared ZnO film was estimated to be 4.9 μm and its refractive index at 80 °C was estimated to be 1.96. In addition, the measurement system was used to detect environmental changes, including temperature changes and gas exposure. It was observed that the optical characteristics of ZnO films exhibit marked variations with temperature shifts, enabling the establishment of a temperature calibration curve based on spectral feature displacement. In addition, experiments using a variety of gases showed that NO2 and gaseous isopropanol significantly affect the interference spectrum of ZnO, with the peak of the interference spectrum shifted by 2.3 nm and 5.2 nm, respectively, after injection of the two gases. This indicates that interferometric spectroscopy can serve as an effective tool for ZnO monitoring, capable of selectively detecting specific gases.
利用氧化锌薄膜实现基于微光谱仪的干涉光谱学和环境传感
本研究介绍了一种利用配备光谱芯片的微型光谱仪分析薄膜干涉光谱的新方法。本研究以溶胶-凝胶法制备的氧化锌(ZnO)薄膜为重点,旨在通过光谱分析探索薄膜的物理性质。在获得氧化锌薄膜的干涉光谱后,对光谱中的峰值位置进行了编目。通过数学模拟调整薄膜的折射率和厚度,使模拟干涉峰位置与观察到的峰位置相匹配。所制备的氧化锌薄膜的厚度估计为 4.9 μm,在 80 °C 时的折射率估计为 1.96。此外,测量系统还用于检测环境变化,包括温度变化和气体暴露。结果表明,氧化锌薄膜的光学特性随温度的变化而发生明显的变化,因此可以根据光谱特征位移建立温度校准曲线。此外,使用多种气体进行的实验表明,二氧化氮和气态异丙醇对氧化锌的干涉光谱有明显影响,注入这两种气体后,干涉光谱的峰值分别偏移了 2.3 nm 和 5.2 nm。这表明干涉光谱法可作为监测氧化锌的有效工具,能够选择性地检测特定气体。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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