首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到19条相似文献,搜索用时 140 毫秒
1.
施介华  薛竹 《色谱》2011,29(2):152-156
以普伐他汀钠、阿托伐他汀钙、辛伐他汀和洛伐他汀为研究对象,考察了微乳液流动相中表面活性剂的浓度、油相浓度、助表面活性剂浓度以及流动相的pH值等对他汀类药物在微乳液相色谱体系中保留行为的影响。实验结果表明,微乳流动相中表面活性剂、助表面活性剂、亲脂性溶剂的浓度对他汀类药物保留行为的影响与理论模型一致;流动相的pH值对酸性他汀类药物保留行为的影响与理论模型基本一致,对中性他汀类药物保留行为的影响存在着隐函数关系。所建立的保留模型能较好地反映微乳液组成对他汀类药物保留行为的影响。  相似文献   

2.
李宁  黄纪云  黄碎锦  高崇凯 《化学学报》2009,67(18):2116-2120
建立快速微乳液相色谱法(MELC)测定药物的油-水分配系数(log P)的方法. 选择5种模拟生物膜的微乳流动相体系, 以7个标准药物的log P对保留因子(log k)的回归线性方程, 计算被测药物的log P值. 并以药物文献的log P值对实验测得log k值的线性相关系数为参数, 对微乳体系的表面活性剂和油相的种类进行考察, 得到测定非同类的中性、碱性药物的油-水分配系数最佳流动相体系为6.0% Brij35-6.6%正丁醇-0.8%正辛醇-86.6%磷酸缓冲液(0.05 mol• L-1, pH 7.0), 其测得值与文献的实验值平均相差0.3个对数单位. 结果显示该方法可靠、高效、重现性好, 可用于药物的油-水分配系数log P的测定.  相似文献   

3.
袁炜  吕建德  徐秀珠  傅小芸 《分析化学》2001,29(9):1086-1089
以阴离子表面活性剂十二烷基硫酸纳(SDS)和阳离子表面活性剂十六烷基三甲基溴化铵(CTMAB)组成的微乳液体系为分离介质,研究一组烷基苯同系物的毛细管电动色谱分离,较系统地考察了多种微乳液条件下溶质的保留时间,容量因子和电动色谱时间窗。结果表明,在SDS组成的微乳液体系中,烷基苯同系物的logk′与烷基链碳数(C=0~5)呈良好线性关系,logk′=aC+b,r>0.9921。微乳液组成的变化对两种体系的电动分离有不同的影响规律,并对作用机理进行了探讨。  相似文献   

4.
建立了微乳液相色谱(MELC)同时测定中成药及保健品中添加的10种降压药物的分析方法。考察了微乳流动相的组成成分(包括表面活性剂、助表面活性剂、油相的种类及质量分数)、pH值和固定相种类对分离效果的影响。同时利用星点设计-响应面优化法进一步优化微乳组成。实验得到的最佳分离条件:色谱柱为Agela Promosil C18(2)(250 mm×4.6 mm,5μm);微乳流动相为5.6%(质量分数)十二烷基聚乙二醇醚(Brij35)-0.17%(质量分数)十二烷基硫酸钠(SDS)-5.1%(质量分数)正丁醇-0.46%(质量分数)环己烷-水(pH 3.0);流速为1.0mL/min;检测波长为230 nm;柱温为30℃。该方法具有灵敏度高、稳定性好和环保的优点。  相似文献   

5.
通过比较药物在不同类型表面活性剂的胶束液相色谱中的容量因子与药物的醇-水分配系数(log P)的相关性, 发现药物在非离子型表面活性剂Brij35作为流动相的胶束液相色谱中的容量因子与其文献中报道的log P间有一定的相关性, 进一步考察了Brij35浓度对药物保留的影响, 并建立了药物在不同浓度的Brij35胶束液相色谱中的容量因子与文献中log P的相关关系, 该方法简单、快速, 将为药物的疏水性评价提供重要的参考价值.  相似文献   

6.
微乳液在中药黄酮类成分薄层色谱分析中的应用   总被引:9,自引:0,他引:9  
周漩  宋粉云  钟兆健 《色谱》2006,24(3):324-324
微乳液为表面活性剂、助表面活性剂、油、水等组分在适当配比下自发生成的无色透明、各相同性、低粘度的热力学稳定体系,与有机溶剂相似而有增溶作用。康纯等首次将微乳液应用到了薄层色谱技术中。本文以微乳液为流动相,聚酰胺薄膜为固定相,对几种典型的含黄酮类成分的中药材中的黄酮类成分进行了分离。与传统的方法相比,该法分离效率和检测灵敏度高,重现性好,毒性小且价格低廉。  相似文献   

7.
孟雅莉  李臻  陈静  夏春谷 《化学进展》2011,23(12):2442-2456
室温离子液体具有诸多优异的物理化学性质及功能,是一类备受关注的新型介质和材料,应用于诸多领域。特别是近年来,由离子液体参与形成的微乳液因其在生物、医药、催化以及材料制备等领域具有潜在的应用前景而备受关注。本文综述了近年来咪唑类离子液体作为极性、非极性和表面活性剂组分,分别取代微乳液体系中的水相、油相和表面活性剂相,形成的一系列新型的微乳液体系的研究进展,归纳了水、有机溶剂、高聚物、助表面活性剂、温度等因素对离子液体微乳液性质的影响。重点介绍了离子液体微乳液的热点应用,包括以离子液体微乳液液滴为模板合成纳米材料,离子液体微乳液作为酶反应的介质及其在有机反应等方面的研究进展。  相似文献   

8.
十二烷基硫酸钠中相微乳液的液晶结构   总被引:1,自引:0,他引:1  
微乳液是指油、水、表面活性剂、助表面活性剂形成的各向同性的、光学透明或半透明的热力学稳定体系.中相微乳液是指富表面活性剂相与过剩水相、过剩油相形成的三相体系.中相微乳液既可增溶水,又可增溶油,且与过剩水相、油相超低的界面张力,因而在强化采油中引起人们...  相似文献   

9.
王淼  严建伟  王颖  吕建德  傅小芸 《化学学报》2003,61(12):1980-1985
以阴离子表面活性剂十二烷基硫酸钠(SDS)、非离子表面活性剂吐温20( Tween 20)及两者组成的混合胶束体系作为毛细管胶束电动色谱(MECC)的分离介 质,进行4种结构相似的酸性化合物的MECC分离研究,考察了胶束的类型、表面活 性剂的浓度、缓冲溶液的pH值及有机改性剂乙醇对分离的影响。结果表明各因素对 酸性药物的MECC分离有不同的影响规律。SDS胶束体系对溶质的保留值最大, Tween 20体系的保留值最小,二者的分离选择性正好相反,混合胶束体系的分离行 为则介于两者之间;在SDS和Tween 20体系中,表面活性剂浓度增加,溶质的保留 时间均随之递增,混合胶束体系中,总浓度一定,随Tween 20配比的增加,溶质的 保留时间先减少后增加;缓冲溶液的pH值增大,使溶质的分离效果均能变差;有机 改性剂乙醇的加入对容量因子的影响主要与溶质的疏水性有关,并对分离作用机理 进行了探讨。在SDS和Tween 20 MECC体系下,分别进行了实样测定,取得了满意的 结果。  相似文献   

10.
中相微乳液;盐度扫描;助表面活性剂对阴/阳离子表面活性剂复配形成微乳液的影响  相似文献   

11.
Microemulsion electrokinetic chromatography (MEEKC) is an electrodriven separation technique. Separations are generally achieved using microemulsions consisting of surfactant-coated nanometer-sized oil droplets suspended in aqueous buffer. A cosurfactant such as a short-chain alcohol is generally used to stabilize the microemulsion. This review summarizes the various microemulsion types and compositions that have been used in MEEKC. The effects of key-operating variables such as surfactant type and concentration, cosurfactant type and concentration, buffer pH and type, oil type and concentration, use of organic solvent and cyclodextrin additions, and temperature are described. Specific examples of water-in-oil microemulsions and chirally selective separations are also covered.  相似文献   

12.
The separation of anionic, cationic and neutral drugs in microemulsion electrokinetic chromatography (MEEKC) was studied with a statistical experimental design. The concentration of sodium dodecyl sulfate (SDS, surfactant), 1-butanol (co-surfactant) and borate buffer and the factors Brij 35 (surfactant), 2-propanol (organic solvent) and cassette temperature were varied simultaneously, while the parameters pH (9.2), the concentration of octane (oil, 0.8% w/w), the voltage (10 kV) and the dimension of the fused-silica capillary, were kept constant. Eight different model substances were chosen with different hydrophobicities. Two of the analytes were positively charged, two were negatively charged, and the remaining four were neutral or close to neutral at the pH explored. The importance of each parameter on the separation window, the plate height and the retention factor for each of the analytes was studied by means of multiple linear regression (MLR) models. A new response was evaluated for anions, the quotient between the effective mobility in the microemulsion and the effective mobility in the corresponding buffer. Factors affecting selectivity changes were also explored, and it was found that SDS and 2-propanol had the largest effect on selectivity.  相似文献   

13.
The selectivity of microemulsion electrokinetic chromatography (MEEKC) was studied utilizing some uncharged model compounds like aromatic amides, steroids, and esters of nicotinic acid. The cosurfactant of the microemulsion was found to be the most important factor affecting the selectivity, and alteration between 6.6% of 1-propanol, 1-butanol, tetrahydrofuran, and 2-ethoxyethanol caused several substantial changes in the migration order. In addition, the nature of the surfactant was found to significantly affect the selectivity. In this case, changes in order of migration was observed by replacement of half the content of sodium dodecyl sulfate (SDS) with either sodium dioctyl sulfosuccinate (SDOSS), 3-(N,N-dimethylmyristylammonio) propanesulfonate (MAPS), polyoxyethylene sorbitan monolaurate (Tween 21), and polyoxyethylene 23 lauryl ether (Brij 35). MEEKC was also accomplished with 3.3% of the anionic surfactant sodium cholate and with the cationic surfactant N-cetyl-N,N,N-trimethylammonium bromide (CTMA). Both provided substantial differences in selectivity as compared to the SDS-based systems. With SDS as surfacant, the concentration was varied within 1.0-4.5%. Minor selectivity changes were observed as the concentration of the surfacant was reduced, but the major effect was a reduction in the total migration time. The organic solvent of the microemulsion droplets was found only to have minor impact on the selectivity.  相似文献   

14.
Microemulsion electrokinetic chromatography was applied for the separation of levetiracetam from other antiepileptic drugs (primidone, phenobarbital, phenytoin, lamotrigine and carbamazepine) that are potentially coadministered in therapy of patients. The influence of the composition of the microemulsion system (with sodium dodecyl sulfate as charged surfactant) was investigated, modifying the kind of cosurfactant (lower alcohols from C3 to C5), the pH (and salinity) of the aqueous background electrolyte, and the ratio of aqueous phase to organic constituents forming the microdroplets of the oil-in-water emulsion. Separation selectivity was depending on all these parameters, resulting even in changes of the migration sequence of the analytes. Only moderate correlation was observed for the microemulsion system compared with a micellar system, both consisting of the aqueous borate buffer (pH 9.2) and SDS as micelle former (linear correlation coefficient for analyte mobilities is 0.974). The sample solvent plays an important role on the shape of the resulting chromatograms: methanol at concentrations higher than 35% impairs peak shape and separation efficiency. The microemulsion method (with 93.76% aqueous borate buffer (pH 9.2, 10 mM), 0.48% n-octane, 1.80% SDS, 3.96% 1-butanol, all w/w) is suitable for the determination of levetiracetam in human plasma (combined with a sample pretreatment based on solid-phase extraction).  相似文献   

15.
Marsh A  Clark B  Broderick M  Power J  Donegan S  Altria K 《Electrophoresis》2004,25(23-24):3970-3980
Microemulsion electrokinetic chromatography (MEEKC) is an electrodriven separation technique. Separations are typically achieved using oil-in-water microemulsions, which are composed of nanometre-sized droplets of oil suspended in aqueous buffer. The oil droplets are coated in surfactant molecules and the system is stabilised by the addition of a short-chain alcohol cosurfactant. The novel use of water-in-oil microemulsions for MEEKC separations has also been investigated recently. This report summarises the different microemulsion types and compositions used to-date and their applications with a focus on recent papers (2002-2004). The effects of key operating variables (pH, surfactant, cosurfactant, oil phase, buffer, additives, temperature, organic modifier) and methodology techniques are described.  相似文献   

16.
The influences of the composition of microemulsion on the microstructure including dimensions and ζ potentials of microdroplets were measured in details. The average dynamic dimension of microdroplets was measured by dynamic laser light scattering, and ζ potential was determined to characterize average surface charge density of microdroplets. The experiment results showed that increase of the amount of surfactant resulted in decrease of microdroplet size but almost invariant ζ potential, which would enlarge migration time of the microdroplet in MEEKC. With increment of cosurfactant concentration, the microdroplet size had an increasing trend, whereas the ζ potential decreased. Thus, observed migration velocity of microdroplets increased, which made the separation window in MEEKC shortened. Neither dimension nor ζ potential of microdroplets changed by varying both the type and the amount of the oil phase. Adding organic solvent as modifier to microemulsion did not change the microdroplet size, but lowered ζ potential. The migration time of microdroplet still became larger, since EOF slowed down owing to organic solvent in capillary. So, besides increment of surfactant concentration, organic additive could also enlarge the separation window. Increase of cosurfactant concentration was beneficial for separation efficiency thanks to the looser structure of swollen microdroplet, and the peak sharpening might compensate for the resolution and peak capacity owing to a narrow separation window. Except the oil phase, tuning the composition of microemulsion would change the microstructure, eventually could be exploited to optimize the resolution and save analysis time in MEEKC.  相似文献   

17.
In micellar liquid chromatography (MLC), the resolution for a given multi-component mixture can be optimized by changing several variables, such as the concentrations of surfactant and organic modifier, the pH and temperature. However, this advantage can only be fully exploited with the development of mathematical models that describe the retention and the separation mechanisms. Several reports have appeared recently on the possibilities of accurately predicting the solute retention in MLC. Although the retention and selectivity may strongly change with varying concentrations of surfactant, organic modifier and/or pH, the observed changes are very regular, and are well described by simple models. This characteristic enables a successful prediction of retention times and compensates the negative effect of the broad and tailed chromatographic peaks obtained for some solutes when micellar eluents are used. An overview of the models proposed in the literature to describe the retention behaviour in pure micellar eluents and micellar eluents containing an organic modifier, at a fixed pH or at varying pH, is given. The equations derived permit the evaluation of the strength of micelle-solute and stationary phase-solute interactions. The prediction of the retention based on molecular properties and the use of neural networks, together with the factors affecting the prediction capability of the models (linearization of the equations, dead time, critical micellar concentration, ionic strength and temperature) are commented on. The strategies used for the optimization of resolution are also given.  相似文献   

18.
Optimizing separation of ionizable compounds in order to find robust conditions has become an important part of method development in liquid chromatography. This work is an attempt to explain the observed variations of retention of acid and basic compounds with the organic modifier content in the mobile phase, according to various factors: the type of modifier, the type of buffer, the temperature and of course the type of solute. This is done by considering the variation of the so-called chromatographic pKa which refers to the pH measured in the aqueous medium and is determined from retention data. A procedure is described that accurately relates, from nine experiments, retention to solvent composition and pH. The limits of such a procedure are evaluated and two examples of optimized separations of basic compounds are given.  相似文献   

19.
The hydrophile-lipophile property of the sucrose monododecanoate changes from hydrophilic to lipophilic by adding an alcohol as a cosurfactant. With the addition of a short-alkyl-chain alcohol (pentanol, hexanol), the surfactant forms the middle-phase microemulsion whereas a lamellar liquid crystal (L!) appears with a medium- or long-chain alcohol (heptanol, octanol, decanol) at the balanced state in water/ SE/ cosurfactant/ decane system. The effect of changing oil was also studied in the presence of a middle-chain cosurfactant (heptanol). A short-chain aromatic oil (m-xylene) forms middle-phase microemulsion whereas a longer aliphatic one (hexadecane) forms lamellar liquid crystalline phase in a dilute region when the HLB of surfactant is balanced in a given system. O/W emulsions become stable on the hydrophilic-surfactant-rich side whereas W/O emulsions are stable on the cosurfactant-rich side. Emulsions are very unstable in the three-phase regions. However, when the lamellar phase is produced, emulsions become stable at the balanced state because water and oil are incorporated in L! phase in the longer cosurfactant systems such as water/ SE/ octanol/ decane and water/ SE/ decanol/ decane.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号