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1.
将三相中空纤维液相微萃取(HF-LPME)和超高效液相色谱与串联质谱技术(UPLC-MS/MS)相结合检测饮品中的苯甲酸和山梨酸。通过优化选定三相中空纤维液相微萃取的最佳萃取条件:正辛醇为萃取剂,给出相的pH值为2.7,接收相的pH值为13.6,转速1 000 r/min,萃取时间30 min,以一步完成萃取、净化、富集过程,并用Waters ACQUITYTMUPLC BEH C18(50 mm×2.1 mm,1.7μm)色谱柱进行分离,流速0.25 mL/min,流动相为甲醇和10 mmol/L乙酸铵溶液,梯度洗脱,电喷雾负模式(ESI-)电离和多反应监测(MRM)模式检测,外标法定量。该方法在0.05~5.0 mg/L范围内具有良好的线性关系,r均大于0.997,苯甲酸和山梨酸的检出限(S/N=3)分别为0.005、0.01 mg/L,定量下限(S/N=10)分别为0.01、0.02 mg/L,在0.1、1.0、4.0 mg/L加标水平下的回收率为91%~103%,相对标准偏差小于6.0%。将该方法运用于实际样品的检测,方法准确、快速、灵敏、绿色环保,适于复杂基质饮品中苯甲酸和山梨酸的检测。  相似文献   

2.
建立了三相中空纤维膜液相微萃取-高效液相色谱(HF-LPME-HPLC)方法,用于分析测定水中痕量双酚A的含量.设计了三相中空纤维膜液相微萃取系统,优化的HP-LPME最佳萃取条件为:萃取剂为正辛醇,接受相NaOH浓度为0.09 mol/L,样品溶液pH=4.0,NaC1加入量为30 g/L,搅拌速度为900 r/min,萃取时间为60 min.萃取后取20 μL接受相进行色谱分析.在最佳萃取条件下,方法的线性范围为0.5~200 μg/L(r> 0.999),检出限(信噪比为3)为0.2 μg/L;富集因子为241;方法RSD<3.2% (n=3).在实际环境水样中添加5,20和50μg/L的双酚A标准物质,加标平均回收率为92.8%~101.9%.表明本方法可用于水中痕量双酚A的快速准确测定.  相似文献   

3.
提出了离子色谱法测定环境水中苯酚含量的方法。样品采用三相中空纤维液相微萃取法萃取,以正辛醇为萃取溶剂,在600 r·min-1转速下萃取40 min。经SH-2 Anion色谱柱分离,以12 mmol·L-1氢氧化钠溶液为淋洗液洗脱。苯酚的质量浓度在1.00~500μg·L-1范围内呈线性,方法的检出限(3S/N)为0.8μg·L-1。方法用于地表水中苯酚的测定,加标回收率在90.1%~109%之间。  相似文献   

4.
魏超  卢珩俊  陈梅兰  朱岩 《色谱》2011,29(1):54-58
建立了中空纤维液-液-液三相微萃取-高效液相色谱法测定水中4种酚类化合物的方法.实验系统地优化了影响萃取效率的因素(包括有机溶剂种类、接收相浓度、分散相pH值、加盐量、转速及萃取时间).得到的最佳萃取条件为:萃取剂为正辛醇,接收相NaOH溶液的浓度为0.09 mol/L,分散相的pH为4,萃取时间为40 min,搅拌速...  相似文献   

5.
基于中空纤维的液相微萃取技术的研究进展   总被引:4,自引:0,他引:4  
王春  吴秋华  王志  韩丹丹  胡彦学 《色谱》2006,24(5):516-523
基于中空纤维的液相微萃取集采样、萃取、浓缩于一体,具有成本低,溶剂用量少,易与高效液相色谱、气相色谱、毛细管电泳联用等特点。该技术不仅可实现较高的回收率和富集效率,而且具有突出的样品净化功能,是一种环境友好的样品前处理新技术。该文对基于中空纤维的液相微萃取的装置、操作模式、基本原理及近年来应用研究的进展进行了综述。  相似文献   

6.
以三相中空纤维液相微萃取(HF-LPME)作为样品前处理方法,结合薄层色谱分离,同步荧光光谱法测定酱油中色胺的含量。通过单因素实验确立的萃取最优条件为:样品溶液p H值为12.0,正辛醇为萃取溶剂,0.1 mol/L的HCl为接受相,搅拌速度为590 r/min,萃取时间为60 min;取20μL接受相进行TLC分析,样品点用异丙醇溶解后离心分离;采用同步荧光在λem=350.4 nm处进行定量分析。在最佳萃取条件下,方法的线性范围为0.32~50 mg/L(r0.978 0),检出限(S/N=3)为0.32 mg/L。酱油样品的加标回收率为87.5%~107.7%,相对标准偏差(RSD)不大于6.6%。该方法操作简单、绿色高效、灵敏度高,可用于酱油中色胺的快速准确测定。  相似文献   

7.
基于中空纤维液相微萃取技术,建立了绿豆芽中吲哚类植物生长素的荧光检测方法。通过L9(34)正交实验,对中空纤维液相微萃取条件进行优化,得到的优化条件为:样品溶液的p H值调为4.0,萃取溶剂为正辛醇,接受相为p H 12.0的Na OH,搅拌速度为1 000 r/min,萃取时间为60 min。在最优萃取条件下,吲哚类植物生长素的富集倍数可达92倍。供体相中吲哚类植物生长素的质量浓度在1.71~50.0 mg/L范围内呈良好的线性关系,相关系数为0.997 9,检出限(S/N=3)为0.57 mg/L,样品的加标回收率为88.6%~100.7%,相对标准偏差(RSD)不大于4.8%。该方法操作简单,环境友好,可用于绿豆芽中吲哚类植物生长素含量的准确快速测定。  相似文献   

8.
建立了中空纤维膜液相微萃取-高效液相色谱法(HPLC)测定酱油、食醋及碳酸饮料中苯甲酸和山梨酸含量的方法。称取酱油、食醋或超声脱气后的碳酸饮料样品0.100 0 g,加入500 mg·L-1内标(肉桂酸)溶液0.1 mL,用水稀释至50 mL。移取10 mL上述样品溶液于萃取小瓶中,用1 mol·L-1盐酸溶液调节溶液pH至2.5,加入0.50 g氯化钠。用丙酮超声洗涤聚偏氟乙烯中空纤维膜小段(6.0 cm)并置于磷酸三丁酯中超声浸润3 min。向中空纤维膜腔体注入50μL氢氧化钠溶液(pH 13.0),封口后浸入萃取小瓶中,以转速1 000 r·min-1萃取25 min。按照仪器工作条件,吸取中空纤维膜内的溶液用于HPLC分析,内标法定量。结果显示:苯甲酸和山梨酸的质量浓度均在0.01~10.00 mg·L-1内与其对应的目标物与内标峰面积比值呈线性关系,检出限(3S/N)分别为0.001,0.003 mg·L-1;对酱油样品进行测定,日内精密度(n=6)和日间精密度(n=...  相似文献   

9.
多孔中空纤维液相微萃取技术的研究进展   总被引:4,自引:0,他引:4  
基于多孔中空纤维的液相微萃取集采样、萃取和浓缩于一体,具有成本低,易与多种分析仪器联用等特点,该技术不仅可得到较高的富集倍数和回收率,而且具有突出的样品净化功能,有机溶剂用量非常少,是一种环境友好的样品前处理新技术,国内尚未广泛应用。本文综述了多孔中空纤维液相微萃取的主要装置、萃取模式、影响因素及其应用,引用文献54篇。  相似文献   

10.
讨论了以中空纤维为载体的碳纳米管/正辛醇固-液协同微萃取机理,建立了中空纤维碳纳米管/正辛醇固-液协同微萃取-高效液相色谱法同时测定复杂样品中微量咖啡酸、阿魏酸和肉桂酸含量的方法.以2.5 cm长的聚偏氟乙烯中空纤维为碳纳米管正辛醇分散液载体,供相为分析物的HCl(pH 2.1)溶液,接受相为pH 12.7的NaOH溶液,在35℃下,搅拌萃取60 min,萃取液进行高效液相色谱紫外检测.在优化的实验条件下,分析物的线性范围均在0.05~50 μg/L,r>0.9990 (n=5);检出限均为0.015μg/L;日内与日间精密度均小于9.8%(n=9),平均回收率为93.8%~115.2%;富集倍数分别为514,942和1084倍.在以中空纤维为支持体的碳纳米管/正辛醇微萃取中,碳纳米管/正辛醇分散液嵌入中空纤维管壁上的微孔中形成了碳纳米管/正辛醇固-液微萃取单元束,对苯丙烯酸类化合物起到协同萃取作用.  相似文献   

11.
A new polyvinylidene difluoride (PVDF) hollow fiber (200 μm wall thickness, 1.2 mm internal diameter, 0.2 μm pore size) was compared with two other polypropylene (PP) hollow fibers (200, 300 μm wall thickness, 1.2 mm internal diameter, 0.2 μm pore size) in the automated hollow fiber liquid-phase microextraction (HF-LPME) of flunitrazepam (FLNZ) in biological samples. With higher porosity and better solvent compatibility, the PVDF hollow fiber showed advantages with faster extraction efficiency and operational accuracy. Parameters of the CTC autosampler program for HF-LPME in plasma and urine samples were carefully investigated to ensure accuracy and reproducibility. Several parameters influencing the efficiency of HF-LPME of FLNZ in plasma and urine samples were optimized, including type of porous hollow fiber, organic solvent, agitation rate, extraction time, salt concentration, organic modifier, and pH. Under optimal conditions, extraction recoveries of FLNZ in plasma and urine samples were 6.5% and 83.5%, respectively, corresponding to the enrichment factor of 13 in plasma matrix and 167 in urine matrix. Excellent sample clean-up was observed and good linearities (r2 = 0.9979 for plasma sample and 0.9995 for urine sample) were obtained in the range of 0.1–1000 ng/mL (plasma sample) and 0.01–1000 ng/mL (urine sample). The limits of detection (S/N = 3) were 0.025 ng/mL in plasma matrix and 0.001 ng/mL in urine matrix by gas chromatography/mass spectrometry/mass spectrometry.  相似文献   

12.
An automated dynamic two-phase hollow fiber microextraction apparatus combined with high-performance liquid chromatography was developed for extraction and determination of chlorophenoxy acid (CPA) herbicides from environmental samples. The extraction device, called TT-extractor, consists of a polypropylene hollow fiber mounted inside a stainless steel tube by means of two tee-connectors in flow system. An organic solvent, which fills the lumen and the pores of the hydrophobic fiber, is pumped through the fiber repeatedly and the sample is pumped along the outer side of the fiber. The factors affecting the dynamic hollow fiber liquid-phase microextraction (DHF-LPME) of target analytes were investigated and the optimal extraction conditions were established. To test the applicability of the designed instrument, CPAs were extracted from environmental aqueous samples. The limits of detection (LODs) as low as 0.5 μg/L, linear dynamic range in the range of 1-100 μg/L and the relative standard deviations of <7% were obtained. The developed method can provide perconcentration factors as large as 230. A hollow fiber membrane can be used at least 20 times with neither loss in the efficiency nor carryover of the analytes between runs. The system is cheap and convenient and requires minimal manual handling.  相似文献   

13.
采用中空纤维液相微萃取与高效液相色谱联用技术测定了尿液样品中的痕量己烯雌酚;考察了样品相酸度、中间相种类、接收相浓度、搅拌速度、萃取时间等对液-液-液三相微萃取效率的影响,进而确定了最佳萃取条件.结果表明,当样品相pH为2.5,中间相为甲苯,接收相为3μL 0.25mol/L氢氧化钠溶液,搅拌速度为800r/min,萃取时间为50min时,萃取效率最佳.在最佳萃取条件下,样品的回收率为76.4%,相对标准偏差为3.8%.  相似文献   

14.
In this paper, extraction kinetics was investigated experimentally and theoretically in hollow fiber liquid-phase microextraction (HF-LPME) and electromembrane extraction (EME) with the basic drugs droperidol, haloperidol, nortriptyline, clomipramine, and clemastine as model analytes. In HF-LPME, the analytes were extracted by passive diffusion from an alkaline sample, through a (organic) supported liquid membrane (SLM) and into an acidic acceptor solution. In EME, the analytes were extracted by electrokinetic migration from an acidic sample, through the SLM, and into an acidic acceptor solution by application of an electrical potential across the SLM. In both HF-LPME and EME, the sample (donor solution) was found to be rapidly depleted for analyte. In HF-LPME, the mass transfer across the SLM was slow, and this was found to be the rate limiting step of HF-LPME. This finding is in contrast to earlier discussions in the literature suggesting that mass transfer across the boundary layer at the donor–SLM interface is the rate limiting step of HF-LPME. In EME, mass transfer across the SLM was much more rapid due to electrokinetic migration. Nevertheless, mass transfer across the SLM was rate limiting even in EME. Theoretical models were developed to describe the kinetics in HF-LPME, in agreement with the experimental findings. In HF-LPME, the extraction efficiency was found to be maintained even if pH in the donor solution was lowered from 10 to 7–8, which was below the pKa-value for several of the analytes. Similarly, in EME, the extraction efficiency was found to be maintained even if pH in the donor solution increased from 4 to 11, which was above the pKa-value for several of the analytes. The two latter experiments suggested that both techniques may be used to effectively extract analytes from samples in a broader pH range as compared to the pH range recommended in the literature.  相似文献   

15.
In the present study, a three phase-based hollow fiber protected liquid-phase microextraction (HF-LPME) method combined with high-performance liquid chromatography (HPLC) for the determination of salicylates in environmental waters was developed. The HF-LPME procedure was optimized by an L16(45) orthogonal array experimental design (OAD) with five factors at four levels. Under the optimal extraction condition (pHs of donor and receiving phases of 3.0 and 6.2, respectively, extraction time of 45 min, stirring speed of 1000 rpm, and salt addition of 20% (w/v)), salicylates could be determined in a linear range from 0.025 to 1.0 μg mL−1 with a good correlation (r2 > 0.9930). The limits of detection (LODs) ranged between 0.6 ng mL−1 and 1.2 ng mL−1 for the target analytes. The relative standard deviations (RSDs) of intra-day and inter-day were in the range of 0.64–14.58% and 0.16–15.45%, respectively. This procedure afforded a convenient, sensitive, accurate and cost-saving operation with high extraction efficiency for the model analytes. The method was applied satisfactorily to the determination of salicylates in two environmental waters.  相似文献   

16.
陈璇  白小红  王晓  王婧  卜玮 《色谱》2010,28(12):1144-1149
利用中空纤维液相微萃取方法(HF-LPME)分析麻黄碱和伪麻黄碱在不同基质中的优势构象,阐明了麻黄碱和伪麻黄碱的萃取机理;结合高效液相色谱(HPLC)建立了微量麻黄碱和伪麻黄碱的分离测定方法。以聚偏氟乙烯中空纤维为有机溶剂载体,正己醇为萃取溶剂,麻黄碱和伪麻黄碱的NaOH(5 mol/L)溶液为样品相,0.01 mol/L H2SO4溶液为接收相,在1200 r/min转速下萃取35 min,收集萃取液直接进行HPLC分析。麻黄碱和伪麻黄碱在水溶液中的线性范围为5~100 μg/L,检出限分别为1.9 μg/L和1.2 μg/L,富集倍数分别为38和61倍,平均回收率分别为100.6%±1.2%和103.2%±3.5%;在鼠尿液中的线性范围为100~5×104 μg/L,检出限分别为30 μg/L和42 μg/L,富集倍数分别为20和17倍,平均回收率分别为108.4%±4.4%和106.1%±5.4%。研究表明该方法操作简单,选择性高,适用于微量麻黄碱的含量测定和分析。  相似文献   

17.
A new method based on negligible depletion hollow fiber-protected liquid-phase microextraction coupled with high-performance liquid chromatography (HPLC) was developed for the simultaneous determination of partitioning coefficients (KOW) and acid dissociation constants (pKa), by using phenol, 4-chlorophenol and 2,4-dichlorophenol as model compounds. A 37-mm length polypropylene hollow fiber membranes (600 μm inner diameter, 200 μm wall-thickness, 0.2 μm pore size, ∼70% porosity) with two-end sealed were filled with 1-octanol by ultrasonic agitation to prepare the extraction device. The extraction device was deployed in sample solutions, prepared by spiking target analytes in 1-octanol saturated aqueous solutions (500 mL), for negligible depletion extraction. After equilibrium was reached (∼5 h), the 1-octanol in the lumen of the hollow fiber membrane was collected for HPLC determination of the target analytes. As the depletion of the analytes in aqueous samples was negligible, the distribution coefficient (DOW) could be calculated based on the measured equilibrium concentration in 1-octanol (CO) and the initial concentration (CW) in the aqueous sample of the target analyte (DOW = CO/CW). The DOW values measured at various pH values were nonlinearly regressed with pH to obtain the KOW and pKa values of a compound. Results showed that the measured values of the KOW and pKa of these model compounds agreed well with literature data.  相似文献   

18.
Carrier-mediated three-phase hollow fiber microextraction combined with high-performance liquid chromatography-ultra violet detection (HPLC-UV) was applied for the extraction and determination of propylthiouracil in biological samples. Propylthiouracil (PTU) was extracted from 7.5 mL of the basic solution (the source phase) with pH 12 into an organic phase (n-octanol containing 6% (w/v) of Aliquat 336 as the carrier) impregnated in the pores of a hollow fiber, and finally was back extracted into 24 μL of the acidic solution located inside the lumen of the hollow fiber (the receiving phase). The extraction was performed through the gradient of counter ion from the source to the receiving phase. The effects of different variables on the extraction efficiency were studied simultaneously using an experimental design. A half-fractional factorial design was employed for screening to determine the variables significantly affecting the extraction efficiency. Then, the factors with significant effect were optimized using a central composite design (CCD) and the response surface equations were developed. The optimal experimental conditions obtained from this statistical evaluation included: source phase, pH 12; temperature, 25 °C; extraction time, 40 min; counter ion concentration, 2 mol L−1 of NaClO4; organic solvent 6% of Aliquat in octanol and without salt addition in the source phase. Under the optimized conditions, the preconcentration factors were between 125 and 198 and also the limit of detections (LODs) ranged from 0.1 μg L−1 to 0.4 μg L−1 in different biological samples. The calibration curve was linear (r2 = 0.998) in the concentration range of 0.5-1000 μg L−1. Finally, the feasibility of the proposed method was successfully confirmed by extraction and determination of PTU in human plasma and urine as well as the bovine milk and meat samples in microgram per liter, and suitable results were obtained (RSDs < 6.3%).  相似文献   

19.
Parabens (alkyl-p-hydroxybenzoates) are antimicrobial preservatives widely used in cosmetics, toiletries, pharmaceuticals, and food. Nowadays, they are considered emerging pollutants and their determination is becoming increasingly important since they are continuously released into the environment. In this work, a hollow fibre liquid-phase microextraction method has been developed for the extraction of parabens from environmental waters. The parameters affecting the extraction of parabens (organic solvent used as liquid membrane; pH of both sample and acceptor solution; salting-out effect; extraction time and stirring speed) were carefully optimized in order to reach high recoveries for all tested analytes. Under optimum conditions, parabens were extracted from river, reservoir and sea water samples with recoveries ranging from 16.7 to 68.6% depending upon the analyte and the sample analyzed, leading to detection limits lower than 0.2?ng?mL?1 using a simple HPLC-UV instrument.  相似文献   

20.
The presence of pharmaceuticals in the environment is a very important problem that requires analytical solutions. The wide variety of matrices and, usually, the low pharmaceuticals levels in the environmental samples requires high sensitive and selective analytical procedures. Wastewaters are one of the more important sources of environmental pollutants but they are very complex matrices that need clean-up procedures prior the analysis. Hollow fiber-based liquid-phase microextraction (HF-LPME) is a relatively new technique used in analytical chemistry for sample pre-treatment that offers high selectivity and sensitivity compared to most traditional extraction techniques. The low organic solvent consumption derived from the use of HF-LPME is according to the current trends to a “Green Chemistry”, and Analytical Chemistry should follow these environmental good practices. This paper describes an extraction method using a polypropylene membrane supporting dihexyl ether (three-phase hollow fiber-based liquid-phase microextraction (HF-LPME)) for the direct analysis of three pharmaceuticals (salicylic acid (SAC), ibuprofen (IBU) and diclofenac (DIC)) in raw and treated wastewaters followed by a HPLC/MS-MS determination using a highly packed Pursuit® XRs Ultra 2.8 μm C18 column that allows high resolution using low flow-rates and, simultaneously, short retention times. Detection limits were 20, 100 and 300 ng L−1 for salicylic acid, diclofenac and ibuprofen, respectively.  相似文献   

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