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[通过反相气相色谱法测定不对称双阳离子离子液体的溶解度参数]

[Determination of solubility parameters for asymmetrical dicationic ionic liquids by inverse gas chromatography].

作者信息

Wang Jun, Yang Xuzhao, Wu Jinchao, Song Hao, Zou Wenyuan

出版信息

Se Pu. 2015 Dec;33(12):1301-6. doi: 10.3724/sp.j.1123.2015.07030.

Abstract

Inverse gas chromatographic (IGC) technology was used to determine the solubility parameters of three asymmetrical dicationic ionic liquids ([ PyC5Pi] [ NTf2]2, [MpC5Pi] [NTf2]2 and [PyC6Pi] [NTf2]2) at 343.15-363.15 K. Five alkanes were applied as test probes including octane (n-C8) , decane (n-C10), dodecane (n-C12), tetradecane (n-C14), hexadecane (n-C16). Some thermodynamic parameters were obtained by IGC data analysis, such as the specific retention volumes of the solvents (V0(g)), the molar enthalpies of sorption (ΔHs(1)), the partial molar enthalpies of mixing at infinite dilution (ΔH∞91)), the molar enthalpies of vaporization (ΔH)v)), the activity coefficients at infinite dilution (Ω∞(1)), and Flory-Huggins interaction parameters (χ∞(12)) between ionic liquids and probes. The solubility parameters (δ2) of the three dicationic ionic liquids at room temperature (298.15 K) were 28.52-32.66 (J x cm(-3)) ½. The solubility parameters (δ2) of cationic structure with 4-methyl morpholine are bigger than those of the cationic structure with pyridine. The bigger the solubility parameter (δ2) is, the more the carbon numbers of linking group of the ionic liquids are. The results are of great importance to the study of the solution behavior and the applications of ionic liquid.

摘要

采用反相气相色谱(IGC)技术测定了三种不对称双阳离子离子液体([PyC5Pi][NTf2]2、[MpC5Pi][NTf2]2和[PyC6Pi][NTf2]2)在343.15 - 363.15 K温度下的溶解度参数。使用了五种烷烃作为测试探针,包括辛烷(n-C8)、癸烷(n-C10)、十二烷(n-C12)、十四烷(n-C14)、十六烷(n-C16)。通过IGC数据分析获得了一些热力学参数,如溶剂的比保留体积(V0(g))、吸附的摩尔焓(ΔHs(1))、无限稀释时混合的偏摩尔焓(ΔH∞91)、汽化的摩尔焓(ΔH)v))、无限稀释时的活度系数(Ω∞(1))以及离子液体与探针之间的Flory-Huggins相互作用参数(χ∞(12))。三种双阳离子离子液体在室温(298.15 K)下的溶解度参数(δ2)为28.52 - 32.66(J·cm(-3))½。含4-甲基吗啉阳离子结构的溶解度参数(δ2)大于含吡啶阳离子结构的溶解度参数。离子液体连接基团的碳原子数越多,其溶解度参数(δ2)越大。这些结果对于研究离子液体的溶液行为和应用具有重要意义。

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