School of Electrical Engineering and Intelligentization, Dongguan University of Technology, Dongguan 523808, China; School of Physics and Optoelectronics, South China University of Technology, Guangzhou 510641, China.
Foreign Environmental Cooperation Center, Ministry of Ecology and Environment, Beijing 100035, China.
Spectrochim Acta A Mol Biomol Spectrosc. 2022 Feb 5;266:120470. doi: 10.1016/j.saa.2021.120470. Epub 2021 Oct 7.
Lithium citrate (LC) as a common food additive and also a psychiatric drug, usually in the form of tetrahydrate can gradually lose its crystalline water and convert into LC anhydrate at temperatures higher than the room temperature. In order to quickly distinguish the tetrahydrate from the anhydrate and to study the dehydration kinetics of the LC hydrates under the influence of the temperature, terahertz time-domain spectroscopy (THz-TDS) is utilized in this work. Experimental results show that the LC tetrahydrate at room temperature has an obvious absorption peak around 1.66 THz, while the LC anhydrate has no absorption peak at 0.5-3.0 THz. The absorption peak intensity of the LC tetrahydrate decreases continuously upon heating from 25 to 100 °C. Based on the normalized absorption peak area of the LC tetrahydrate around 1.66 THz, variation of its dehydration rate with the heating temperature is investigated and their relationship is fitted by the Arrhenius equation. The reaction activation energy of the LC tetrahydrate is derived to be 495.1 ± 17.8 J/g with a deviation of about 3.7% from the traditional difference scanning calorimetry (DSC) measurement. These results indicate that THz-TDS can provide an efficient method to detect crystalline hydrates and can be applied to study the dehydration kinetics of crystalline hydrates with advantages of being fast, label-free and accurate.
柠檬酸锂 (LC) 作为一种常见的食品添加剂和精神科药物,通常以四水合物的形式存在,在高于室温的温度下会逐渐失去结晶水并转化为 LC 无水物。为了快速区分四水合物和无水物,并研究 LC 水合物在温度影响下的脱水动力学,本工作采用太赫兹时域光谱 (THz-TDS) 进行研究。实验结果表明,室温下的 LC 四水合物在 1.66 THz 左右有明显的吸收峰,而 LC 无水物在 0.5-3.0 THz 范围内没有吸收峰。LC 四水合物的吸收峰强度在 25 至 100°C 的加热过程中持续下降。基于 LC 四水合物在 1.66 THz 附近的归一化吸收峰面积,研究了其脱水速率随加热温度的变化,并通过阿仑尼乌斯方程对其关系进行拟合。得出 LC 四水合物的反应活化能为 495.1 ± 17.8 J/g,与传统的差示扫描量热法 (DSC) 测量值的偏差约为 3.7%。这些结果表明,THz-TDS 可以提供一种有效的方法来检测结晶水合物,并可用于研究结晶水合物的脱水动力学,具有快速、无标记和准确的优点。