Mesoporous Zirconia Coating for Sensing Applications Using Attenuated Total Reflection Fourier Transform Infrared (ATR FT-IR) Spectroscopy

衰减全反射 介孔材料 苯甲腈 傅里叶变换红外光谱 立方氧化锆 涂层 材料科学 红外光谱学 水溶液 光谱学 分析化学(期刊) 介孔二氧化硅 化学工程 化学 有机化学 纳米技术 催化作用 复合材料 陶瓷 工程类 物理 量子力学
作者
Dominik Wacht,Mauro David,Borislav Hinkov,Hermann Detz,Andreas Schwaighofer,Bettina Baumgartner,Bernhard Lendl
出处
期刊:Applied Spectroscopy [SAGE Publishing]
卷期号:76 (1): 141-149 被引量:7
标识
DOI:10.1177/00037028211057156
摘要

Mid-infrared attenuated total reflection (ATR) spectroscopy is a powerful tool for in situ monitoring of various processes. Mesoporous silica, an extensively studied material, has already been applied in sensing schemes due to its high surface area and tunable surface chemistry. However, its poor chemical stability in aqueous solutions at pH values higher than 8 and strong absorption below 1250 cm-1 limits its range of applications. To circumvent these problems, a mesoporous zirconia coating on ATR crystals was developed. Herein, the synthesis, surface modification, and characterization of ordered mesoporous zirconia films on Si wafers and Si-ATR crystals are presented. The modified coating was applied in sensing schemes using aromatic and aliphatic nitriles in aqueous solution as organic pollutants. The mesoporous zirconia coating shows strong chemical resistance when kept in alkaline solution for 72 h. The success of surface modification is confirmed using Fourier transform infrared (FT-IR) spectroscopy and contact angle measurements. Benzonitrile and valeronitrile in water are used as model analytes to evaluate the enrichment performance of the film. The experimental results are fitted using Freundlich isotherms, and enrichment factors of 162 and 26 are calculated for 10 mg L-1 benzonitrile and 25 mg L-1 valeronitrile in water, respectively. Limits of detection of 1 mg L-1 for benzonitrile and 11 mg L-1 for valeronitrile are obtained. The high chemical stability of this coating allows application in diverse fields such as catalysis with the possibility of in situ monitoring using FT-IR spectroscopy.
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