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使用顶空固相微萃取法测量 SDS 溶液中的局部平衡风味分布。

Measuring local equilibrium flavor distributions in SDS solution using headspace solid-phase microextraction.

机构信息

Department of Chemical Engineering and Materials Science, University of California, Davis, Davis, California 95616, United States.

出版信息

J Phys Chem B. 2011 Dec 15;115(49):14484-92. doi: 10.1021/jp206984q. Epub 2011 Nov 10.

DOI:10.1021/jp206984q
PMID:22004271
Abstract

Solid-phase microextraction (SPME) sampling of the headspace above an aqueous micellar solution of sodium dodecyl sulfate (SDS) was shown to be effective for quantifying the equilibrium partitioning of limonene solute between water and SDS micellar aggregates. Concentrations in the headspace were determined from the amount absorbed by the SPME fiber during 1 min extractions, with the quantity on the fiber determined using gas chromatography/mass spectrometry (GC/MS). Headspace concentrations as a function of surfactant concentration were fit to a mass balance to yield the partition coefficient and critical micelle concentration. When the total limonene in the system was low enough that it could be completely dissolved by water in the absence of micelles, a constant value for the partition coefficient of 1700 M(-1) was obtained, independent of the limonene concentration. However, at higher total limonene concentrations, the partition coefficient became a function of the amount of limonene in the micelles, as confirmed by separate experiments in which either limonene or SDS concentration was varied. The observed increase in partition coefficient with increasing limonene likely signals a shift from micelles to swollen micelles and ultimately to microemulsion droplets. The effect of SDS concentration on the aqueous solubility limit of limonene could also be observed in HS-SPME experiments where either SDS or limonene was varied.

摘要

固相微萃取(SPME)采样技术用于测定水中十二烷基硫酸钠(SDS)胶束溶液上方的顶空气体中柠檬烯溶质的平衡分配情况。结果表明,这种方法非常有效。通过测定 SPME 纤维在 1 分钟萃取过程中吸收的量,可以从顶空气体浓度中确定纤维上的浓度,并用气相色谱/质谱(GC/MS)进行测定。通过对顶空气体浓度与表面活性剂浓度之间的关系进行质量平衡拟合,得到了分配系数和临界胶束浓度。当系统中的总柠檬烯浓度足够低,以至于在没有胶束的情况下可以完全溶解在水中时,得到了一个常数为 1700 M(-1)的分配系数,与柠檬烯浓度无关。然而,在更高的总柠檬烯浓度下,分配系数成为胶束中柠檬烯量的函数,这通过单独的实验得到了证实,其中分别改变了柠檬烯或 SDS 的浓度。观察到的分配系数随柠檬烯浓度增加而增加,这可能表明胶束发生了从胶束到溶胀胶束再到微乳液液滴的转变。在 HS-SPME 实验中,也可以观察到 SDS 浓度对柠檬烯在水中溶解度极限的影响,其中 SDS 或柠檬烯的浓度发生了变化。

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