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1.
采用电化学沉淀法,成功地制备了多孔、高效聚苯胺固相微萃取涂层,并建立了顶空固相微萃取-气相色谱(HS-SPME-GC)快速测定水体和牛奶中的痕量多溴联苯醚的方法。详细研究了萃取模式、萃取温度、萃取时间、顶空体积及离子强度对萃取效率的影响。在优化实验条件下,本法测定的6种多溴联苯醚的线性范围为1~4000 ng/L(除BDE-154和BDE-153分别为1~3000 ng/L、1~2500 ng/L外),相关系数大于0.99,检出限(S/N=3)在0.08~0.20 ng/L之间,相对偏差小于8.5%(n=7)。自制聚苯胺涂层对多溴联苯醚的萃取效率优于商品化100μm-PDMS纤维。将本法用于河水和牛奶中痕量多溴联苯醚的测定,实际样品回收率分别在90%和80%以上。  相似文献   

2.
通过以Nation为黏合剂、不锈钢丝为涂层载体,制备了多壁碳纳米管固相微萃取纤维.该纤维的制备方法快速、简便、成本低,并具有热稳定性好(300℃)、使用寿命长(〉100次)、对多溴联苯萃取效率高等特点.研究优化了影响萃取及分离效率的解吸温度和时间、萃取时间、搅拌速度、盐度等实验条件,进行了海水中多溴联苯的测定.对一溴联苯的线性范围为0.1-5.0ng/mL,而二溴联苯、三溴联苯、四溴联苯和五溴联苯的线性范围均为0.01~5.0ng/mL.方法的检测限为0.1~0.8ng/L.在优化的条件下分别测定了0.1和1ng/mL多溴联苯的海水加标样品,回收率在91.1%~107.3%之间,相对标准偏差小于12%.该方法分析时间短、灵敏度高、操作简便,适用于水样中多溴联苯的痕量分析.  相似文献   

3.
建立了固相萃取-浓硫酸净化-气相色谱/三重四极杆串联质谱(SPE-GC-MS/MS)分析水中8种多溴联苯醚(PBDEs,BDE-28,BDE-47,BDE-99,BDE 100,BDE-153,BDE-154,BDE-183和BDE-209)的方法。方法采用改进的色谱柱可同时分析高溴代联苯醚BDE209,采用浓硫酸净化固相萃取后的样品和串联质谱特有的多反应监测模式,可以很好地去除基质干扰和提高定性的准确性。通过优化三重四极杆串联质谱的碰撞电压、扫描峰宽和离子对等条件,使8种多溴联苯醚的检测灵敏度显著提高。8种多溴联苯醚的浓度在0.1~50 ng/mL(BDE209:1~500 ng/mL)范围内线性良好,回归系数均大于0.9997。方法回收率在49%~110%,相对标准偏差在1.4%~6.0%之间。方法可用于实际地表水体中PBDEs的定量检测。  相似文献   

4.
将沸石咪唑酯骨架材料(ZIF-8)制成固相微萃取涂层,结合气相色谱-三重四极杆串联质谱联用仪(GC-MS/MS),建立了一种快速灵敏分析环境水样中6种痕量多溴联苯醚的方法。采用单因素优化实验得到的最优条件为:不添加Na Cl,萃取温度为50℃,萃取时间为50 min,p H值为7.0,解吸时间和解吸温度分别为5 min和280℃。在最优条件下,该方法测定水样中多溴联苯醚的线性范围为1~1 000 ng/L,检出限为0.08~2.29 ng/L,定量下限为0.23~7.32 ng/L。日内和日间相对标准偏差分别为4.3%~6.5%和6.9%~9.3%。将该方法应用于4种实际环境水样(自来水、泉水、池塘水和垃圾填埋场废水)中多溴联苯醚的检测,回收率为81.6%~109%。  相似文献   

5.
自制离子液体固相微萃取涂层分析人体尿液中的五氯酚   总被引:1,自引:0,他引:1  
胡庆兰 《应用化学》2013,30(3):323-328
建立了顶空固相微萃取与气相色谱法(HS-SPME-GC)测定人体尿液中五氯酚(PCP)的新方法。 采用溶胶-凝胶法,加入自制的离子液体键合固相微萃取涂层,优化了萃取温度、萃取时间、pH值、离子强度及解吸时间。 结果表明,样品中加入3 g NaCl,溶液的pH值为2,并以一定速度搅拌的条件下,在80 ℃顶空萃取50 min,300 ℃下解吸5 min,方法的检测限为5.0 ng/L,线性范围为0.05~100 μg/L,相对标准偏差(RSD)为5.9%,加标回收率为106.6%。  相似文献   

6.
建立全自动固相萃取-气相色谱法同时测定地表水中20种多溴联苯的方法。水样经0.45μm滤膜过滤后用0.05 g/mL氢氧化钠溶液或盐酸溶液(体积比1∶1)调节pH至中性,加入10 mL甲醇作为有机改性剂混匀,通过全自动固相萃取仪以10 mL/min的流量上样,被测物质经PS/DVB固相萃取柱富集后,用正己烷-乙酸乙酯(体积比7∶3)混合溶剂洗脱。采用DB-5MS(15 m×0.25 mm,0.1μm)毛细管柱分离,电子捕获检测器检测,外标法定量。结果表明,20种多溴联苯的质量浓度在5.0~100μg/L范围内线性良好,相关系数均大于0.998,方法检出限为1.3~4.4 ng/L,定量限为5.2~17.6 ng/L,在20.0 ng/L和80.0 ng/L 2种添加水平下平均加标回收率为72.8%~90.9%,相对标准偏差为3.3%~8.5%。该方法自动化程度高、操作简便,具有良好的精密性和准确性,可以满足地表水中多溴联苯的快速测定要求。  相似文献   

7.
采用顶空固相微萃取谱-气相色谱-质谱联用法对饮用水中2-甲基异茨醇、土味素、2-甲氧基-3-异丙基吡嗪、2-甲氧基-3-异丁基吡嗪、2,4,6-三氯苯甲醚和2,3,6-三氯苯甲醚共6种致嗅化合物进行了分析。通过对固相微萃取纤维的类型、解吸附时间、NaCl溶液浓度、溶液pH、顶空温度、转速、顶空时间等顶空条件及GC-MS条件的优化,建立了一次性顶空固相微萃取快速测定饮用水中6种致嗅化合物的方法。采用0.10 mol/L的NaOH溶液将水样调至pH 6.0。以DVB/Carboxen/PDMS涂层的固相微萃取纤维头对20 mL添加了NaCl溶液浓度为0.3 g/mL的水样于70℃水浴顶空萃取25 min。被萃取的致嗅化合物于250℃解吸附4 min供GC-MS分析。6种致嗅化合物在0.25~100 ng/L范围内线性关系良好(R>0.986),检出限低于0.1 ng/L。对实际水样进行分析,低、中、高3种不同浓度的加标回收率为93.0%~106.6%,相对标准偏差为3.0%~6.6%(n=6)。该分析方法可对饮用水中6种致嗅化合物进行同时监测。  相似文献   

8.
建立了顶空液相微萃取/气相色谱-质谱联用测定中药枳壳中有机挥发物的方法.在顶空液相微萃取实验条件优化的基础上,确定了最佳实验条件:以正辛烷作为有机萃取剂,体积为2 μL,样品用量为0.3 g,液滴距离样品表面0.8 cm处,萃取8 min后直接进样.与固相微萃取/气相色谱-质谱法相比,顶空液相微萃取法定性了30种成分,固相微萃取法定性了24种成分,顶空液相微萃取法操作简单、快速,实验结果灵敏度更高,且萃取效率高,重复性好,可用于中药枳壳中有机挥发物的快速分析.  相似文献   

9.
提出了顶空固相微萃取-气相色谱-串联质谱法测定香精香料中黄樟素含量的方法。为使固相微萃取达到更高的效率,选用65μm聚二甲基硅氧烷/二乙烯苯作为微萃取的涂层,萃取温度及时间为(25±5)℃和30 min。用DB-5MS毛细管色谱柱分离,电子轰击离子源串联质谱模式检测。选定黄樟素的母离子和子离子分别为m/z 162和m/z 131,内标丙酸苯乙酯的定量离子为m/z 104。黄樟素的线性范围为20~1 000 ng·g-1,方法的检出限(3S/N)为2.2 ng·g-1。在3个浓度水平上做回收试验,加标回收率在71.1%~114.0%之间,相对标准偏差(n=5)在3.4%~16%之间。  相似文献   

10.
提出了顶空固相微萃取-气相色谱法测定卷烟包装材料中常用溶剂的方法。为使固相微萃取达到更高的效率,选用75μm CAR/PDMS的固相微萃取头,萃取温度及时间为100℃和40min,解吸温度及时间为200℃和10min。用DB-1石英毛细管色谱柱分离,火焰离子化检测器检测。方法的加标回收率在79%~92%之间,相对标准偏...  相似文献   

11.
In this study, the experimental extraction conditions on applying headspace solid‐phase microextraction and cold fiber headspace solid‐phase microextraction (CF‐HS‐SPME) procedures to samples of six medicinal herbs commonly found in southern Brazil were optimized. The optimized conditions for headspace solid‐phase microextraction were found to be an extraction temperature of 60°C and extraction time of 40 min. For CF‐HS‐SPME, the corresponding values were 60°C and 15 min. In the case of the coating temperature for the CF‐HS‐SPME system, two approaches were investigated: (i) Temperature of 5°C applied during the whole extraction procedure; and (ii) the use of two fiber temperatures in the same extraction procedure with the aim of extracting the volatile and semivolatile compounds, the ideal condition being 60°C for the first 7.5 min and 5°C for the final 7.5 min. The three extraction procedures were compared. The CF‐HS‐SPME procedure had good performance only for the more volatile compounds whereas the strategy using two coating temperatures in the same procedure showed good performance for all compounds studied. It was also possible to determine the profile for the volatile fraction of each herb studied applying this technique followed by GC‐MS.  相似文献   

12.
《Analytical letters》2012,45(14):2393-2405
Abstract

The use of headspace solid‐phase microextraction (HS‐SPME) to determine benzene, toluene, ethylbenzene, and xylenes (BTEX) in foundry molding sand, specifically a “green sand” (clay‐bonded sand) was investigated. The BTEX extraction was conducted using a 75 µM Carboxen‐polydimethylsiloxane (CAR‐PDMS) fiber, which was suspended above 10 g of sample. The SPME fiber was desorbed in a gas chromatograph injector port (280°C for 1 min) and the analytes were characterized by mass spectrometry. The effects of extraction time and temperature, water content, and clay and bituminous coal percentage on HS‐SPME of BTEX were investigated. Because green sands contain bentonite clay and carbonaceous material such as crushed bituminous coal, a matrix effect was observed. The detection limits for BTEX were determined to be ≤0.18 ng g?1 of green sand.  相似文献   

13.
Direct analysis of the volatile antimony compounds stibine (SbH3), monomethylantimony, dimethylantimony (Me2Sb) and trimethylantimony (Me3Sb) using solid phase microextraction (SPME) with polydimethylsiloxane fibres and gas chromatography–mass spectrometry (GC–MS) is described. The best analyte to background signal ratio was achieved using a 20 min extraction time. Antimony species were separated using a 3% phenylmethylsilicone capillary column operated at a column pressure of 70 kPa, a flow rate of 1.4 ml min?1 and temperature ramping from 30 to 36 °C at 0.1 °C min?1. Cryogenic focusing of desorbed species was required to achieve resolution of antimony species. The optimized SPME–GC–MS method was applied to the analysis of headspace gases from cultures of Cryptococcus humicolus incubated with inorganic antimony(III) and (V) substrates. The headspace gases from biphasic (aerobic–anaerobic) biomass‐concentrated culture incubations revealed the presence of SbH3, Me2Sb and Me3Sb. Stibine was the major antimony species detected in cultures amended with inorganic antimony(V). Me3Sb was the sole volatile antimony species detected when cultures were amended with antimony(III). Copyright © 2002 John Wiley & Sons, Ltd.  相似文献   

14.
A new method for the simultaneous determination of 12 volatile organic compounds (trans-1,2-dichloroethene, 1,1,1-trichloroethane, benzene, 1,2-dichloroethane, trichloroethene, toluene, 1,1,2-trichloroethane, tetrachloroethene, ethylbenzene, m-, p-, o-xylene) in water samples by headspace solid phase microextraction (HS–SPME)–gas chromatography mass spectrometry (GC–MS) was described, using a 100?µm PDMS (polydimethylsiloxane) coated fibre. The response surface methodology was used to optimise the effect of the extraction time and temperature, as well as the influence of the salt addition in the extraction process. Optimal conditions were extraction time and temperature of 30?min and ?20°C, respectively, and NaCl concentration of 4?mol?L?1. The detection limits were in the range of 1.1?×?10?3–2.3?µg?L?1 for the 12 volatile organic compounds (VOCs). Global uncertainties were in the range of 4–68%, when concentrations decrease from 250?µg?L?1 down to the limits of quantification. The method proved adequate to detect VOCs in six river samples.  相似文献   

15.
This paper proposes a new analytical procedure based on the headspace solid‐phase microextraction (HS‐SPME) technique and gas chromatography‐selected ion monitoring‐mass spectrometry (GC‐SIM‐MS) for the determination of 16 phenols extracted from leather samples. The optimized conditions for the HS‐SPME were obtained through two experimental designs – a two‐level fractional factorial design followed by a central composite design – using the commercial SPME fiber polyacrylate 85 μm (PA). The best extraction conditions were as follows: 200 μL of derivatizing agent (acetic anhydride), 20 mL of saturated aqueous NaCl solution and extraction time and temperature of 50 min and 75°C, respectively. All optimized conditions were obtained with fixed leather sample mass (250 mg), vial volume (40 mL) and phosphate buffer pH (12) and concentration (50 mmol/L). Detection limits ranging from 0.03 to 0.20 ng/g, and relative standard deviation (RSD) lower than 10.23% (n=6) for a concentration of 800 ng/g (chlorophenols) and 1325 ng/g (2‐phenylphenol) in the splitless mode were obtained. The recovery was studied at three concentration levels by adding different amounts of phenols to the leather sample and excellent recoveries ranging from 90.0 to 107.2% were obtained. The validated method was shown to be suitable for the quantification of phenols in leather samples, as it is simple, relatively fast and sensitive.  相似文献   

16.
Medical devices sterilized by ethylene oxide (EtO) retain trace quantities of EtO residuals, which may irritate patients' tissue. Reliably quantifying trace level EtO residuals in small medical devices requires an extremely sensitive analytical method. In this research, a Doehlert uniform shell design was utilized in obtaining a response surface to optimize a novel headspace–solid‐phase microextraction–gas chromatographic (HS‐SPME‐GC) method developed for analyzing trace levels of EtO residuals in sterilized medical devices, by evaluating sterilized, polymer‐coated, drug‐eluting cardiovascular stents. The effects of four independent experimental variables (HS‐SPME desorption time, extraction temperature, GC inlet temperature and extraction time) on GC peak area response of EtO were investigated simultaneously and the most influential experimental variables determined were extraction temperature and GC inlet temperature, with the fitted model showing no evidence of lack‐of‐fit. The optimized HS‐SPME‐GC method demonstrated overall good linearity/linear range, accuracy, repeatability, reproducibility, absolute recovery and high sensitivity. This novel method was successfully applied to analysis of trace levels of EtO residuals in sterilized/aerated cardiovascular stents of various lengths and internal diameter, where, upon heating, trace EtO residuals fully volatilized into HS for extraction, thereby nullifying matrix effects. As an alternative, this novel HS‐SPME‐GC method can offer higher sensitivity compared with conventional headspace analyzer‐based sampling. Copyright © 2009 John Wiley & Sons, Ltd.  相似文献   

17.
A headspace solid‐phase micro‐extraction (HS‐SPME) method was employed in order to study the effect of storage conditions of human urine samples spiked with tributyltin (TBT) using gas chromatography and mass spectrometry. To render the analyte more volatile, the derivatization (ethylation) was made in situ by sodium tetraethylborate (NaBEt4), which was added directly to dilute unpreserved urine samples and in buffers of similar acidity. The stability of TBT in human urine matrix was compared with the stability of TBT in buffer solutions of similar pH value. Critical parameters of storage conditions such as temperature and time, which affect the stability of TBT in this kind of matrix, were examined extensively. The tests showed that the stability of TBT remains practically satisfactory for a maximum of 2 days of storage either at +4 or 20°C. Greater variations were observed in the concentration of TBT in human urine samples at +4°C and lower ones at ?20°C over a month's storage. The freeze–thaw cycles have negative effect on the stability and should be kept to a minimum. The results from spiked urine samples are also discussed in comparison to those acquired from buffer solutions of equal TBT concentration. Copyright © 2012 John Wiley & Sons, Ltd.  相似文献   

18.
Three environmentally friendly extraction techniques, membrane assisted solvent extraction (MASE), stir bar sorptive extraction (SBSE), and headspace solid phase microextraction (HS‐SPME), were compared for the direct analysis of the highly toxic rodenticide tetramine in food. The optimized MASE method was applied to seven foods fortified with tetramine and compared to previously reported SBSE and HS‐SPME results. Parameters such as the standard addition linearity (MASE (0.964–0.999), SBSE (0.966–0.999), HS‐SPME (0.955–0.999)), recovery (MASE (12–86%), SBSE (36–130%), HS‐SPME (50–200%)), reproducibility (MASE (3.0–30%), SBSE (4.4–9.6%), HS‐SPME (1–12%)), and LOD (MASE (1.6–6.4 ng/g), SBSE (0.2–2.1 ng/g), HS‐SPME (0.9–4.3 ng/g)) were compared.  相似文献   

19.
A new solid phase microextraction (SPME) fibre using carbon nanotubes as fibre coating incorporated into a groove of a stainless steel rod is suggested. It is mechanically stable and exhibits relatively high thermal stability (up to 280 °C). The coating showed especially good extraction efficiency for aromatic hydrocarbons. The extraction properties of the fibre to benzene, toluene, ethylbenzene and o-xylene were examined using both direct and headspace SPME modes coupled to gas chromatography-flame ionization detection. The parameters affecting the extraction efficiency (extraction temperature and time, salt addition, desorption temperature and time) were investigated and quality parameters were measured under the optimized conditions. For both headspace and direct SPME the calibration graphs were linear up to 100 mg L−1 (R 2 > 0.996) and detection limits ranged from 0.09 to 0.39 μg L−1. The repeatabilities were 5.9–13.3%. The proposed coating was applied for aromatic hydrocarbons determination in petrol station waste waters.  相似文献   

20.
In this work, for the first time, headspace (HS) single‐drop microextraction and simultaneous derivatization followed by GC‐MS was developed to determine the aliphatic amines in tobacco samples. In the HS extraction procedure, the mixture of derivatization reagent and organic solvent was employed as the extraction solvent for HS single‐drop microextraction and in situ derivatization of aliphatic amine in the samples. Fast extraction and simultaneous derivatization of the analytes were performed in a single step, and the obtained derivatives in the microdrop extraction solvent were analyzed by GC‐MS. The optimized experiment conditions were: sample preparation temperature of 80°C and time of 30 min, HS extraction solvent (the mixture of benzyl alcohol and 2,3,4,5,6‐pentafluorobenzaldehyde) volume of 2.0 μL, extraction time of 90 s. With the optimal conditions, the method validations were also studied. The method has good linearity (R2 more than 0.99), accepted precision (RSD less than 13%), good recovery (98–104%) and low limit of detection (0.11–0.97 μg/g). Finally, the proposed technique was successfully applied to the analyses of aliphatic amines in tobacco samples of seven different brands. It was further demonstrated that the proposed method offered a simple, low‐cost and reliable approach to determine aliphatic amines in tobacco samples.  相似文献   

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