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首页> 外文期刊>Journal of Pharmaceutical and Biomedical Analysis: An International Journal on All Drug-Related Topics in Pharmaceutical, Biomedical and Clinical Analysis >Analysis of the acid-base reaction between solid indomethacin and sodium bicarbonate using infrared spectroscopy, X-ray powder diffraction, and solid-state nuclear magnetic resonance spectroscopy.
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Analysis of the acid-base reaction between solid indomethacin and sodium bicarbonate using infrared spectroscopy, X-ray powder diffraction, and solid-state nuclear magnetic resonance spectroscopy.

机译:使用红外光谱,X射线粉末衍射和固态核磁共振光谱分析固体消炎痛和碳酸氢钠之间的酸碱反应。

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摘要

Indomethacin was used as a model compound to investigate acid-base reactions of solid materials, a common type of drug-excipient interaction. In a typical experiment, 500 mg of pure alpha-form indomethacin were mixed with 500 mg of sodium bicarbonate. The mixture was kept at 40 degrees C and at several relative humidities. The reaction was monitored by IR spectroscopy, X-ray powder diffraction, and solid-state NMR. At 40 degrees C and 80% RH, the reaction is nearly complete after 300 h. As observed by IR spectroscopy, the characteristic peaks of alpha-indomethacin disappear during the course of the reaction with the appearance of the characteristic peaks of the salt product, sodium indomethacin trihydrate. Solid-state NMR spectra and X-ray powder diffraction patterns of the reaction mixtures confirm the transformation of the mixtures to sodium indomethacin trihydrate; the reduced peak intensities in the diffraction patterns of the product relative to the initial mixtures indicate the formation of a microcrystalline product. A change in the reaction rate of sodium bicarbonate with alpha-indomethacin is observed when the mixtures are stored at different relative humidities. At 40 degrees C and 66% RH, the reaction of sodium bicarbonate with alpha-indomethacin is about 86% complete after 500 h. No detectable reaction was observed for sodium bicarbonate with the alpha form of indomethacin at 40 degrees C and 11% RH after 15 months. The combination of these solid-state characterization techniques is demonstrated to be essential to detect and monitor acid-base reactions in solid materials, which are impossible to monitor using solution-chemistry methods. The reaction kinetics at 66% RH fits the Jander equation very well, which is consistent with a diffusion-controlled mechanism.
机译:吲哚美辛用作模型化合物,研究固体材料的酸碱反应,这是药物与赋形剂相互作用的一种常见类型。在典型的实验中,将500 mg的纯α型吲哚美辛与500 mg的碳酸氢钠混合。将该混合物保持在40℃和几个相对湿度下。通过IR光谱,X射线粉末衍射和固态NMR监测反应。在40摄氏度和80%相对湿度下,300小时后反应几乎完成。如通过IR光谱观察到的,在反应过程中α-吲哚美辛的特征峰消失,并且出现了盐产物吲哚美辛钠三水合物的特征峰。反应混合物的固态NMR谱和X射线粉末衍射图证实了混合物向吲哚美辛钠三水合物的转化。相对于初始混合物,产物衍射图谱中降低的峰强度表明形成了微晶产物。当混合物以不同的相对湿度存储时,观察到碳酸氢钠与α-吲哚美辛的反应速率发生了变化。在40摄氏度和66%相对湿度下,碳酸氢钠与α-吲哚美辛的反应在500小时后完成了约86%。 15个月后,在40摄氏度和11%相对湿度下,没有观察到以吲哚美辛的α形式存在的碳酸氢钠反应。这些固态表征技术的结合被证明对于检测和监测固体材料中的酸碱反应至关重要,而使用溶液化学方法无法监测这些反应。在66%RH的反应动力学非常符合Jander方程,这与扩散控制机制是一致的。

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