首页> 外文期刊>The Journal of Supercritical Fluids >Study of solvent-solute and solute-solute interaction effects on naphthalene in carbon dioxide by NMR measurement of rotational ang angular momentum correlation times in CO2 at sub- and supercritical temperatures
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Study of solvent-solute and solute-solute interaction effects on naphthalene in carbon dioxide by NMR measurement of rotational ang angular momentum correlation times in CO2 at sub- and supercritical temperatures

机译:通过NMR测量亚临界和超临界温度下CO2中旋转角动量相关时间的溶剂-溶质和溶质-溶质相互作用对二氧化碳中萘的影响

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摘要

The effect of temperature variation from subcritical to supercritical conditions on the rotational and angular momentum correlation times of naphthalene dissolved in carbon dioxide is reported. The rotational correlation time, τ_c is found to be only slightly dependent upon solution viscosity, unaffected by the CO2 phase change at about 32°C and is essentially equal to its value in acetone at the same temperature. τ_c is approximately twice its gas phase free rotor time. These results are interpreted to indicate that ground state solute-solute interactions are unimportant. The angular momentum correlation time, τ_j, undergoes a dramatic increase at the temperature of the phase change indicating an approximately 3.2 fold solvent density augmentation around the naphthalene compared to the bulk gas phase CO2 density under the experimental conditions beyond the critical temperature. These results indicate that a substantial solvent density augmentation occurs that does not cause measurable changes in the rotational properties of the solute. The solvent augmentation is found to disappear within approximately 2°C on either side of the critical temperature.
机译:报告了从亚临界到超临界条件的温度变化对溶解在二氧化碳中的萘的旋转和角动量相关时间的影响。发现旋转相关时间τ_c仅略微取决于溶液粘度,不受约32℃下CO 2相变化的影响,并且基本上等于其在相同温度下在丙酮中的值。 τ_c约为其无气相转子时间的两倍。这些结果被解释为表明基态的溶质-溶质相互作用并不重要。在相变温度下,角动量相关时间τ_j急剧增加,这表明在超过临界温度的实验条件下,萘周围的溶剂密度与大气相CO2密度相比增加了约3.2倍。这些结果表明发生了显着的溶剂密度增加,而不会引起溶质的旋转性能的可测量变化。发现溶剂的增加在临界温度的任一侧约2℃内消失。

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