Thermogravimetric analysis with a heated quartz crystal microbalance

Ward L. Johnson, Elisabeth Mansfield
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引用次数: 6

Abstract

Thermogravimetric analysis (TGA) with an SC-cut quartz crystal microbalance (QCM) was demonstrated at temperatures in the range from 20°C to 450°C. A measurement system was built around a crystal sensor head that was mounted in a small tube furnace. Changes in third-overtone C-mode frequencies of the crystal were measured during thermally activated decomposition and combustion of a poly(methyl methacrylate) (PMMA) film with an initial mass of approximately 6 μg, and corresponding changes in mass Δm were estimated through the use of the Sauerbrey equation. Noise and drift in frequencies and associated Δm were determined through least-squares fitting and compared with commercially available high-resolution conventional TGA systems. The microbalance-based TGA (μ-TGA) system is found to have one to two orders of magnitude lower noise than high-resolution TGA at temperatures below 200°C and to have at least an order of magnitude lower drift over the entire measured temperatures. However, increasing temperature dependence of crystal frequencies at elevated temperatures and noise in temperature measurements lead to noise in the determination of temperature-dependent mass above 400°C that is comparable in magnitude to that of high-resolution TGA. Enhancements in performance of μ-TGA depend primarily on the implementation of reliable piezoelectric resonators with low temperature dependence over the entire measured range.
用加热石英晶体微天平热重分析
在20°C至450°C的温度范围内,用sc切割石英晶体微天平(QCM)进行了热重分析(TGA)。测量系统围绕安装在小型管式炉中的晶体传感器头建立。在初始质量约为6 μg的聚甲基丙烯酸甲酯(PMMA)薄膜的热活化分解和燃烧过程中,测量了晶体三次谐波c模频率的变化,并利用Sauerbrey方程估计了相应的质量变化Δm。通过最小二乘拟合确定频率中的噪声和漂移以及相关的Δm,并与市售的高分辨率传统TGA系统进行比较。在温度低于200°C时,基于微天平的TGA (μ-TGA)系统的噪声比高分辨率TGA低一到两个数量级,并且在整个测量温度上的漂移至少低一个数量级。然而,在高温下晶体频率的温度依赖性和温度测量中的噪声增加导致400°C以上温度依赖性质量测定中的噪声与高分辨率TGA相当。μ-TGA性能的增强主要依赖于在整个测量范围内具有低温度依赖性的可靠压电谐振器的实现。
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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