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Comparison of the peak resolution and the stationary phase retention between the satellite and the planetary motions using the coil satellite centrifuge with counter-current chromatographic separation of 4-methylumbelliferyl sugar derivatives

机译:使用盘旋卫星离心机和4-甲基伞形糖衍生物的逆流色谱分离比较卫星和行星运动的峰分辨率和固定相保留

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摘要

Coil satellite centrifuge (CSC) produces the complex satellite motion consisting of the triplicate rotation of the coiled column around three axes including the sun axis (the angular velocity, ω1), the planet axis (ω2) and the satellite axis (the central axis of the column) (ω3) according to the following formula: ω1 = ω2 + ω3. Improved peak resolution in the separation of 4-methylumbelliferyl sugar derivatives was achieved using the conventional multilayer coiled columns with ethyl acetate/1-butanol/water (3 : 2 : 5, v/v) for the lower mobile phase at the combination of the rotation speeds (ω1, ω2, ω3) = (300, 150, 150 rpm), and (1 : 4 : 5, v/v) for the upper mobile phase at (300 : 100 : 200 rpm).The effect of the satellite motion on the peak resolution and the stationary phase retention was evaluated by each CSC separation with the different rotation speeds of ω2 and ω3 under the constant revolution speed at ω1 = 300 rpm. With the lower mobile phase, almost constant peak resolution and stationary phase retention were yielded regardless of the change of ω2 and ω3, while with the upper mobile phase these two values were sensitively varied according to the different combination of ω2 and ω3. For example, when ω2 = 147 or 200 rpm is used, no stationary phase was retained in the coiled column while ω2 = 150 rpm could retain enough volume of stationary phase for separation. On the other hand, the combined rotation speeds at (ω1, ω2, ω3) = (300, 300, 0 rpm) or (300, 0, 300 rpm) produced insufficient peak resolution regardless of the choice of the mobile phase apparently due to the lack of rotation speed except at (300, 0, 300 rpm) with the upper mobile phase. At lower rotation speed of ω1 = 300 rpm, better peak resolution and stationary phase retention were obtained by the satellite motion (ω3) than by the planetary motion (ω2), or ω3 > ω2.The effect of the hydrophobicity of the two-phase solvent systems on the stationary phase retention was further examined using the n-hexane/ethyl acetate/1-butanol/methanol/water system at different volume ratios. In the satellite motion at (ω1, ω2, ω3) = (300, 150, 150 rpm), almost constant stationary phase retention was obtained with the lower mobile phase regardless of the hydrophobicity of the solvent system whereas the stationary phase retention varied according to the volume ratio of the two-phase solvent system for the upper mobile phase. However, stable stationary phase retention was observed with either phase used as the mobile phase.In order to analyze the acceleration acting on the coiled column, an acceleration sensor was set on the column holder by displacing the multilayer column. The combination of the rotation speeds at (300, 100, 200 rpm) showed double loops in the acceleration track, whereas (300, 150, 150 rpm) showed a single loop, and all other combinations showed, complex tracks.The overall results indicate that the satellite motion is seriously affected by the combination of rotation speeds and the hydrophobicity of the two-phase solvent system when the upper phase was used as the mobile phase for separation.
机译:线圈卫星离心机(CSC)产生复杂的卫星运动,该运动由盘绕柱围绕三个轴(包括太阳轴(角速度ω1),行星轴(ω2)和卫星轴(中心轴))的三次旋转组成列(ω3)根据以下公式:ω1=ω2+ω3。使用常规的多层螺旋色谱柱,使用乙酸乙酯/ 1-丁醇/水(3:2:5,v / v)作为下层流动相的组合,可以提高分离4-甲基伞形糖衍生物的峰分离度。上流动相在(300:100:200 rpm)时的旋转速度(ω1,ω2,ω3)=(300、150、150 rpm)和(1:4:5,v / v)。在ω1= 300 rpm的恒定转速下,通过每个CSC分离以不同的ω2和ω3转速对卫星运动的峰值分辨率和固定相保留进行了评估。在较低的流动相下,无论ω2和ω3的变化如何,都能得到几乎恒定的峰分辨率和固定相的保留,而在较高的流动相下,这两个值根据ω2和ω3的不同组合而灵敏地变化。例如,当使用ω 2 = 147或200 rpm时,卷曲柱中没有保留固定相,而ω 2 = 150 rpm可以保留足够体积的固定相分离。另一方面,(ω 1 ,ω 2 ,ω 3 )处的组合转速=(300,300,0 rpm)或(300,0,300 rpm)产生的峰分离度不足,而与流动相的选择无关,这显然是由于缺少旋转速度,而上流动相在(300,0,300 rpm)时除外。在较低的ω 1 = 300 rpm转速下,通过卫星运动(ω 3 )比通过行星运动(ω< sub> 2 )或ω 3 2 。进一步研究了两相溶剂体系的疏水性对固定相保留的影响。使用不同体积比的正己烷/乙酸乙酯/ 1-丁醇/甲醇/水体系。在(ω 1 ,ω 2 ,ω 3 )=(300,150,150 rpm)的卫星运动中,固定相位几乎恒定无论溶剂体系的疏水性如何,都可以通过较低的流动相获得保留,而固定相的保留则根据较高流动相的两相溶剂体系的体积比而变化。但是,无论哪种相都可以作为流动相观察到稳定的固定相保留。为了分析作用在螺旋柱上的加速度,通过移动多层色谱柱在柱架上设置了一个加速度传感器。 (300、100、200 rpm)的转速组合显示了加速轨迹中的双循环,而(300、150、150 rpm)则显示了单个循环,所有其他组合均显示了复杂的轨迹。当上层相用作流动相进行分离时,卫星运动受到转速和两相溶剂系统疏水性的共同影响。

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