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首页> 外文期刊>Turkish journal of chemistry >Kinetics and performance studies of a switchable solvent TMG (1,1,3,3-tetramethylguanidine)/1-propanol/carbon dioxide system
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Kinetics and performance studies of a switchable solvent TMG (1,1,3,3-tetramethylguanidine)/1-propanol/carbon dioxide system

机译:可转换溶剂TMG(1,1,3,3-四甲基胍)/ 1-丙醇/二氧化碳体系的动力学和性能研究

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摘要

The rate constants and the activation energies of the reaction between carbon dioxide and 1,1,3,3-tetramethylguanidine (TMG) in 1-propanol solution were measured by a stopped-flow technique at a temperature range of 288-308 K and at a TMG concentration range of 2.5-10.0 wt %. Based on the pseudo-first-order reaction for CO2, the reaction was modeled by a termolecular reaction mechanism, which resulted in a rate constant of 199.30 m(3) kmol(-1) s(-1) at 298 K. The activation energies were 5.19 kJ/mol and 5.26 kJ/mol at 2.5 and 5.0 wt % TMG, respectively. In addition, carbon dioxide absorption capacity was investigated using a gas liquid contact system. Absorption capacity of the 10.0 wt % TMG/1-propanol system was found to be 0.035 mol CO2/0.035 mol TMG, indicating a favorable loading ratio of 1:1. Repeatability and potential performance losses of this system were analyzed by Fourier transform infrared spectrometry (FTIR) in the range of 400-4000 cm(-1). It was found that the FTIR spectra of the rich solvent became virtually identical to the spectra of the lean solvent upon thermal desorption, promising efficient regeneration. It is therefore concluded that the TMG/1-propanol/CO2 system is easily switchable and can be used both for carbon dioxide capture and for other applications that require rapid change of medium from nonionic to ionic liquid.
机译:通过停止流技术在288-308 K的温度范围内和于TMG浓度范围为2.5-10.0重量%。基于CO2的拟一级反应,通过分子反应机理对反应进行建模,得出在298 K下的速率常数为199.30 m(3)kmol(-1)s(-1)。在2.5和5.0重量%的TMG下,能量分别为5.19kJ / mol和5.26kJ / mol。另外,使用气液接触系统研究了二氧化碳吸收能力。发现10.0wt%TMG / 1-丙醇体系的吸收能力为0.035mol CO 2 /0.035mol TMG,表明有利的负载比为1∶1。该系统的重复性和潜在的性能损失通过傅立叶变换红外光谱(FTIR)在400-4000 cm(-1)范围内进行了分析。已经发现,热解吸后,富溶剂的FTIR光谱实际上与贫溶剂的光谱相同,从而有望实现高效再生。因此得出结论,TMG / 1-丙醇/ CO2系统易于切换,既可用于二氧化碳捕集,也可用于需要将介质从非离子液体迅速变为离子液体的其他应用。

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