Quantification of dissolved CO2 in silicate glasses using micro-Raman spectroscopy

拉曼光谱 硅酸铝 碳酸盐 分析化学(期刊) 校准 矿物学 光谱学 硅酸盐 材料科学 猝灭(荧光) 化学 光学 环境化学 荧光 生物化学 物理 统计 数学 有机化学 量子力学 冶金 催化作用
作者
Yann Morizet,Richard A. Brooker,Giada Iacono–Marziano,B A Kjarsgaard
出处
期刊:American Mineralogist [Mineralogical Society of America]
卷期号:98 (10): 1788-1802 被引量:58
标识
DOI:10.2138/am.2013.4516
摘要

This study investigates the potential use of confocal micro-Raman spectroscopy for the quantification of CO2 in geologically relevant glass compositions. A calibration is developed using a wide range of both natural and synthetic glasses that have CO2 dissolved as carbonate (CO32-) in the concentration range from 0.2 to 16 wt%. Spectra were acquired in the 200 and 1350 cm-1 frequency region that includes the ν1 Raman active vibration for carbonate at 1062-1092 cm-1 and the intensity of this peak is compared to various other peaks representing the aluminosilicate glass structure. The most precise and accurate calibration is found when carbonate peaks are compared to aluminosilicate spectral features in the high-frequency region (HF: 700-1200 cm-1), which can be simulated with several Gaussian peaks, directly related to different structural species in the glass. In some samples the "dissolved" CO32- appears to have two different Raman bands, one sharper than the other. This may be consistent with previous suggestions that CO32- has several structural environments in the glass, and is not related to any precipitation of crystalline carbonate from the melt during quenching. The calibration derived using the HF peaks appears linear for both the full range of glass composition considered and the range of CO2 concentrations, even when multiple carbonate peaks are involved. We propose the following, compositionally independent linear equation to quantify the CO2 content in glass with micro-Raman spectroscopy
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