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1.
本研究采用了高效液相色谱-串联质谱联用(HPLC-MS/MS)技术,建立了高灵敏度的同时检测粮谷中9种氨基甲酸酯类农药残留量的方法。样品经乙腈提取,中性氧化铝填充柱净化,然后采用HPLC-ESI( )-MS/MS测定。对液-质分离条件和样品前处理条件进行了优化。9种氨基甲酸酯类农药在0.1~100μg/L范围内线性良好,相关系数为0.9986~0.9998。在0.001~0.05mg/kg浓度范围内,平均加标回收率在73.40%~102.01%之间;相对标准偏差为1.25%~9.94%。该方法简便、快速、灵敏、净化效果好。可同时满足进、出口粮谷中多种氨基甲酸酯类农药残留量的检验工作需要。  相似文献   

2.
建立了大豆和玉米中苯甲酰脲类农药的反相高效液相色谱-电喷雾串联质谱(LC-ESIMS/MS)检测方法。样品经含0.1%乙酸的乙腈提取、浓缩,阳离子固相萃取柱净化,液相色谱串联质谱测定。9种苯甲酰脲类农药在5.0~200μg/L范围内线性关系良好(r20.995)。在大豆和玉米基质中的检出限均为3.0μg/kg,定量下限均为10.0μg/kg。在10.0、20.0、50.0μg/kg 3个加标水平下,9种苯甲酰脲类农药的回收率为46%~92%,精密度(RSD)小于14%。方法准确、灵敏、简单,适用于大豆和玉米中9种苯甲酰脲类农药残留的同时测定。  相似文献   

3.
基于超高效液相色谱-四极杆/静电场轨道阱质谱建立了土壤中常见23种氨基甲酸酯类农药的快速筛查和定量方法。样品采用乙腈提取,优化Qu ECh ERS净化。以BEH C18+色谱柱进行分离,通过正离子模式扫描,静电场轨道阱全扫描获得农药的精确质量数,以Full Scan/dd M S2进行定性筛查和定量检测。实验结果表明,添加量为10,20,50μg/kg时,23种氨基甲酸酯农药含量在1.0~50μg/L范围内线性关系良好,相关系数(r)0.9907,平均回收率为62.5%~119.2%,相对标准偏差(RSD)为1.1%~11%。定量限(S/N≥10)均为5.0μg/kg,方法适用于土壤中氨基甲酸酯类农药的定性筛查和定量分析。  相似文献   

4.
建立超高效液相色谱-串联四极杆质谱法测定水产品中氯霉素残留量的方法。样品均质后经乙酸乙酯提取,正己烷脱脂(或用固相萃取柱净化),超高效液相色谱分离,串联四级杆质谱检测,同位素内标法定量。方法在0.05~1.0μg/kg的添加范围内的平均回收率为84.9%~103.3%,相对标准偏差为3.2%~5.2%,定量检测限为0.02μg/kg。方法适用于各种水产品基质的氯霉素残留检测。  相似文献   

5.
建立了应用直接通过式的增强型基质脂质去除柱联合超高效液相色谱-串联质谱法快速测定乳品中10种氨基甲酸酯类农药残留的分析方法。样品采用乙腈为提取液,沉淀除去蛋白质后,上清液通过Captiva EMR-Lipid柱净化,使用ACQUITY UPLC BEH C18柱(100 mm×2.1 mm, 1.7μm)进行分离,以甲醇-0.1%甲酸水溶液为流动相进行梯度洗脱,流速0.3 mL/min,柱温35℃,采用电喷雾正离子模式(ESI+)和多反应监测(MRM)扫描方式检测,基质标准曲线外标法定量分析。结果显示,10种氨基甲酸酯类农药在2~200μg/L范围内线性关系良好,相关系数(r)>0.999,方法的检出限为0.045~0.23μg/kg,定量限为0.15~0.77μg/kg;在空白基质中添加3个水平(15、50、100μg/kg)的10种氨基甲酸酯类农药,进行加标回收率和重复性试验,回收率为68.7%~93.3%,相对标准偏差(RSD)为1.8%~8.0%。由结果可知,本研究方法高效、便捷、准确,适用于乳品中10种氨基甲酸酯类农药的批量检...  相似文献   

6.
建立了小油菜中阿维菌素、氯虫苯甲酰胺和苯醚甲环唑3种农药残留的超高效液相色谱-串联质谱检测方法。样品经乙腈提取,SPE氨基固相萃取柱净化,超高效液相色谱-串联质谱(UPLC-MS/MS)同时进行检测。3种农药在小油菜样品中均存在程度不同的基质效应,因此,采用空白基质匹配的校准曲线外标法定量。3种农药均在0.5~500μg/L范围内具有良好的线性关系,相关系数均大于0.9996。在0.02~0.2 mg/kg范围内,平均添加回收率为84.0%~110.0%,相对标准偏差为1.2%~1.5%。阿维菌素、氯虫苯甲酰胺和苯醚甲环唑的检出限(LOD)分别为1.87,0.0115和0.0110μg/kg,定量限(LOQ)分别为6.24,0.0384和0.0366μg/kg。  相似文献   

7.
建立了小油菜中阿维菌素、氯虫苯甲酰胺和苯醚甲环唑3种农药残留的超高效液相色谱-串联质谱检测方法。样品经乙腈提取,SPE氨基固相萃取柱净化,超高效液相色谱-串联质谱(UPLC-MS/MS)同时进行检测。3种农药在小油菜样品中均存在程度不同的基质效应,因此,采用空白基质匹配的校准曲线外标法定量。3种农药均在0.5~500μg/L范围内具有良好的线性关系,相关系数均大于0.9996。在0.02~0.2 mg/kg范围内,平均添加回收率为84.0%~110.0%,相对标准偏差为1.2%~1.5%。阿维菌素、氯虫苯甲酰胺和苯醚甲环唑的检出限(LOD)分别为1.87,0.0115和0.0110μg/kg,定量限(LOQ)分别为6.24,0.0384和0.0366μg/kg。  相似文献   

8.
建立用超高效液相色谱–串联质谱仪对蔬菜中17种氨基甲酸酯类农药残留同时检测的方法。对传统的Qu ECh ERS前处理方法进行优化和改良,将样品置于萃取管中,加入乙腈溶液提取,振荡离心后,将上清液移入净化管中净化,用超高效液相色谱–串联质谱仪进行检测。17种待测农药的质量浓度在5~500 ng/mL范围内与其色谱峰面积线性关系良好,相关系数(r)大于0.99,检出限为0.3~1.6μg/kg。在5,10,50μg/kg 3个浓度水平进行添加回收试验,平均回收率在61.0%~107.6%之间,测定结果的相对标准偏差为1.6%~17.6%(n=6)。该方法检测时间较短,检出限低,测量重现性高,适用于蔬菜中17种氨基甲酸酯类农药残留的同时检测。  相似文献   

9.
建立了同时测定土壤中67种农药的QuEChERS/超高效液相色谱-串联质谱法(QuEChERS/UPLCMS/MS)方法。样品经乙腈振荡提取、QuEChERS净化,采用超高效液相色谱-串联质谱测定。质谱分析采用电喷雾电离,正负双离子扫描,多反应监测(MRM)模式。结果表明:67种农药在5~500μg/L范围内均呈良好的线性关系,相关系数为0.990~0.999,检出限为0.001~0.010 mg/L;在10、50、500μg/kg 3个加标水平下的平均回收率为58%~111%,相对标准偏差(n=5)为1.1%~19.3%;定量下限为10μg/kg。该方法简单、快速、重现性好、灵敏度高,可满足土壤中67种农药残留的检测要求。  相似文献   

10.
建立了多壁碳纳米管(MWCNTs)为吸附剂的固相萃取净化/超高效液相色谱-串联质谱(UPLC-MS/MS)检测茶油中12种氨基甲酸酯类农药残留的快速分析方法。样品经乙腈超声提取,MWCNTs固相萃取小柱净化,以乙腈进行洗脱,旋蒸浓缩后以0.1%乙酸-乙腈(5∶5,体积比)定容,采用UPLC-MS/MS多反应监测模式(MRM)测定,外标法定量。考察了提取方式、吸附材料类型、洗脱溶剂用量等因素对目标物萃取效率的影响。在优化实验条件下,MWCNTs固相萃取小柱对茶油样品的净化效果理想。12种氨基甲酸酯类农药在0.005~0.1μg/mL范围内线性关系良好,相关系数(r)均不小于0.998 88;在0.01、0.025、0.05 mg/kg加标水平下,12种目标物的平均回收率为78.3%~116%,相对标准偏差为2.6%~12%,方法的定量下限为0.2~3.0μg/kg。  相似文献   

11.
王丽娟  柯润辉  王冰  尹建军  宋全厚 《色谱》2012,30(9):903-907
建立了超高效液相色谱-电喷雾串联质谱(UPLC-ESI-MS/MS)直接测定黄酒和葡萄酒中氨基甲酸乙酯含量的方法。黄酒和葡萄酒样品经蒸馏水简单稀释后,过0.22 μm微孔滤膜,直接进行UPLC-MS/MS分析检测。以Waters Acquity UPLCTMBEH C18色谱柱为分析柱,乙腈和0.1%(v/v)乙酸水溶液为流动相,采用电喷雾正离子(ESI+)模式电离,多反应监测(MRM)模式检测,以氨基甲酸丁酯(BC)作为内标进行定量。结果表明: 方法在2~500 μg/L的范围内线性关系良好(相关系数大于0.995),其对黄酒和葡萄酒的检出限为1.7 μg/L,定量限为5.0 μg/L,可达到黄酒和葡萄酒中氨基甲酸乙酯的检测要求。当添加水平为10、20和100 μg/L时,黄酒和葡萄酒中待测组分的回收率为90%~102%,日内精密度(n=6)为0.8%~4.5%,日间精密度(n=6)为1.4%~5.6%。该方法样品处理简单,前处理过程不使用有机溶剂,测定快速、准确,灵敏度高,非常适合黄酒和葡萄酒中氨基甲酸乙酯的快速检测和定量分析。  相似文献   

12.
In this report, a high-throughput and sensitive method for analysis of eight central-acting muscle relaxants in human plasma by ultra-performance liquid chromatography–tandem mass spectrometry (UPLC-MS/MS) in the positive and negative ionization modes using tolbutamide as internal standard is presented. After pretreatment of a plasma sample by solid-phase extraction with an Oasis HLB cartridge, muscle relaxants were analyzed by UPLC with Acquity UPLC BEH C18 column and Acquity TQD tandem quadrupole mass spectrometer equipped with an electrospray ionization interface. The calibration curves for muscle relaxants spiked into human plasma equally showed good linearities in the nanogram per milliliter order range. The detection limits (signal-to-noise ratio = 3) was as low as 0.1–2 ng/mL. The method gave satisfactory recovery rates, accuracy, and precision for quality control samples spiked with muscle relaxants. To further validate the present method, 250 mg of chlorphenesin carbamate was orally administered to a healthy male volunteer, and the concentrations of chlorphenesin carbamate in plasma were measured 0.5, 1, 2, 4, 6, and 8 h after dosing; their concentrations in human plasma were between 0.62 and 2.44 μg/mL. To our knowledge, this is the first report describing simultaneous analysis of over more than two central-acting muscle relaxants by liquid chromatography–tandem mass spectrometry. This has been realized by the capability of our instrument for simultaneous multiple reaction monitoring of the target compounds in both positive and negative ionization modes. Therefore, the present method seems very useful in forensic and clinical toxicology and pharmacokinetic studies.  相似文献   

13.
刘欣  孙秀兰  曹进 《色谱》2021,39(12):1324-1330
建立了在线固相萃取/净化-高效液相色谱-串联质谱(online SPE-HPLC-MS/MS)同时测定番茄、大米和圆白菜中8种氨基甲酸酯类农药的分析方法。将番茄5.0 g(不加水)、圆白菜和大米各2.0 g(各加3 mL水),以1000 r/min旋涡1 min,加入2 g氯化钠和10 mL 0.5%(v/v)甲酸乙腈溶液,旋涡均匀后离心,上清液氮吹后用10%(v/v)乙腈水溶液复溶,复溶液使用CAPCELL PAK C18净化柱(50 mm×2.0 mm, 15 μm)进行在线净化,当流动相0.1%(v/v)甲酸水溶液和乙腈的体积比分别为90∶10和35∶65时,可实现氨基甲酸酯农药的吸附和洗脱。以ACQUITY UPLC CSH C18色谱柱(100 mm×2.1 mm, 1.7 μm)为分析柱,实现8种氨基甲酸酯类农药的分离,以0.1%(v/v)甲酸水溶液和乙腈为流动相进行梯度洗脱,在12.0 min内即可完成分析。在优化条件下,8种氨基甲酸酯类农药在各自线性范围内线性良好,相关系数均大于0.995, LOD和LOQ分别为0.01~0.3 ng/mL和0.05~1.0 ng/mL;在3个加标水平下,8种氨基甲酸酯类农药的加标回收率为73.76%~112.32%,相对标准偏差为1.28%~13.14%(n=6)。通过在线净化的方式,大大提高了前处理效率,只需12 min即可完成净化上样,不需氮吹复溶等步骤,提高了处理效率。该法回收率高,重复性好,具有准确、快速、灵敏、环保等优点,可用于植物性食品中8种氨基甲酸酯类农药的检测。  相似文献   

14.
柱前衍生-超高效液相色谱法测定鱼卵中的17种氨基酸   总被引:1,自引:0,他引:1  
建立了一种快速、灵敏的柱前衍生-超高效液相色谱-光电二极管阵列检测器(UPLC-PDA)测定史氏鲟(Acipenser schrenckii)、达氏鳇(Huso dauricus)和小体鲟(Acipenser ruthenus)鱼卵中17种氨基酸含量的方法。采用6.0 mol/L的盐酸水解鱼卵,提取液经低压浓缩、碱性中和,然后以6-氨基喹啉-N-羟基琥珀酰亚胺基氨基甲酸酯(AQC)为衍生试剂在pH 8.8硼酸盐缓冲溶液中衍生化。采用的色谱分离柱为Waters BEH C18柱(100 mm×2.1 mm, 1.7 μm),流动相为30 mmol/L乙酸铵水溶液(pH 3.5)和乙腈(含0.15%(v/v)甲酸及30 mmol/L乙酸铵),梯度洗脱,流速为0.7 mL/min,在260 nm波长下检测。17种氨基酸在5.0~1000 μmol/L浓度范围内,峰面积与浓度之间的线性关系良好(r2≥0.9950)。以标准加入法测定回收率和相对标准偏差(RSD),在100、500、750 μmol/L的添加水平下,17种氨基酸的平均回收率为75.4%~107.3%, RSD为2.19%~12.3%。以3倍信噪比(S/N>3)计方法的检出限,17种氨基酸的检出限为0.94~4.04 μmol/L。应用该方法检测了3种鲟鳇鱼鱼卵中的17种氨基酸含量。结果表明,该方法简便、准确、快速、可靠。  相似文献   

15.
将蔬菜样品粉碎匀浆后于-20℃保存备用。取此样品10.00g与含1.3%(体积分数)甲酸溶液的乙腈10mL充分混匀后超声提取20min,加入无水硫酸钠8.2g作为脱水剂,氯化钠3.0g作为盐析剂,混合后离心5 min。取出上清液并保留。对留下的样品按上述方法重复提取1次。将2次所得上清液合并,并从中分取2.0mL溶液,加入吸附剂N-丙基乙二胺(PSA)0.4g,C180.25g和石墨化碳黑(GCB)8.2mg,涡旋振荡2min进行净化处理,随即离心2min,取上清液经0.22μm滤膜过滤。取滤液,按超高效液相色谱-串联质谱法测定其中6种氨基甲酸酯类农药的残留量。用Agilent Poroshell 120EC-C18色谱柱为固定相,进样量为5μL。用由不同比例的(A)20mmol·L^-1乙酸铵溶液(每升中含乙酸1mL)和(B)乙腈组成混合液作为流动相进行梯度洗脱。串联质谱分析选择电喷雾离子源和多反应监测模式。所测定的6种氨基甲酸酯类农药的工作曲线的线性范围均为0.200~100μg·L^-1,并测得其检出限(3S/N)为0.08~0.38μg·kg^-1。按标准加入法进行回收试验,测得回收率为81.0%~111%,测定值的相对标准偏差(n=6)为2.8%~4.9%。  相似文献   

16.
Eflornithine (α‐difluoromethylornithine) has been used to treat second‐stage (or meningoencephalitic‐stage) human African trypanosomiasis and currently is under clinical development for cancer prevention. In this study, a new ultraperformance liquid chromatography–tandem mass spectrometry (UPLC‐MS/MS)‐based assay was developed and validated for the quantification of eflornithine in rat brain. To improve chromatographic retention and MS detection, eflornithine was derivatized with 6‐aminoquinolyl‐N‐hydroxysuccinimidyl carbamate for 5 min at room temperature prior to injection. Derivatized eflornithine was separated on a reverse‐phase C18 UPLC column with a 6‐min gradient; elution occurred at approximately 1.5 min. Prior to derivatization, eflornithine was reproducibly extracted from rat brain homogenate by methanol protein precipitation (~70% recovery). Derivatized eflornithine was stable in the autosampler (6 °C) for at least 24 h. This new assay had acceptable intra‐ and interday accuracy and precision over a wide dynamic range (5000‐fold) and excellent sensitivity with a lower limit of quantification of 0.1 µm (18 ng/mL) using only 10 μL of rat brain homogenate. The validated eflornithine assay was applied successfully to determine eflornithine distribution in different regions of rat brain in an in situ rat brain perfusion study. Copyright © 2014 John Wiley & Sons, Ltd.  相似文献   

17.
Brandy and other aged distillates are a rich source of polyphenols. For brandies, contact with wood during ageing makes an important contribution to their polyphenols content. This paper describes the use of a previously devised ultra performance LC (UPLC) method to study the polyphenols content of Brandy de Jerez. UPLC is a new technique in LC offering several potential advantages, especially the reduction of time. Analyses of brandy performed by HPLC were repeated by UPLC. A special UPLC analytical column (Acquity UPLC BEH C18 column, 100×2.1 mm), with a particle size of 1.7 μm, forms part of this system. Using the UPLC system enabled the time needed for analysis to be reduced to one tenth of the time needed in the conventional HPLC system. In conclusion, the separation factor results of the UPLC were compared to those obtained using HPLC methods; this demonstrated that simple, high efficiency UPLC gradients are viable and advantageous substitutes for traditional analysis of polyphenols in brandy by HPLC. The method enabled 14 phenolic compounds to be identified and determined in 33 different commercial brandies, and this allowed them to be differentiated in function of quality.  相似文献   

18.
Advantages of application of UPLC in pharmaceutical analysis   总被引:1,自引:0,他引:1  
Ultra Performance Liquid Chromatography (UPLC) is a relatively new technique giving new possibilities in liquid chromatography, especially concerning decrease of time and solvent consumption. UPLC chromatographic system is designed in a special way to withstand high system back-pressures. Special analytical columns UPLC Acquity UPLC BEH C18 packed with 1.7 μm particles are used in connection with this system.The quality control analyses of four pharmaceutical formulations were transferred from HPLC to UPLC system. The results are compared for Triamcinolon cream containing trimacinolone acetonide, methylparaben, propylparaben and triamcinolone as degradation product, for Hydrocortison cream (hydrocortisone acetate, methylparaben, propylparaben and hydrocortisone degradation product), for Indomethacin gel (indomethacin and its degradation products 4-chlorobenzoic acid and 5-methoxy-2-methylindoleacetic acid) and for Estrogel gel (estradiol, methylparaben, propylparaben and estrone as degradation product).The UPLC system allows shortening analysis time up to nine times comparing to the conventional system using 5 μm particle packed analytical columns. In comparison with 3 μm particle packed analytical columns analysis should be shortened about three times. The negative effect of particle decrease is back-pressure increase about nine times (versus 5 μm) or three times (versus 3 μm), respectively. The separation on UPLC is performed under very high pressures (up to 100 MPa is possible in UPLC system), but it has no negative influence on analytical column or other components of chromatographic system. Separation efficiency remains maintained or is even improved. Differences and SST parameters, advantages and disadvantages of UPLC are discussed.  相似文献   

19.
A quantitative Ultra Performance liquid chromatography/tandem mass spectrometry (UPL/MS/MS) protocol was developed for a five-compound mixture in rat plasma. A similar high-performance liquid chromatography/tandem mass spectrometry (HPLC/MS/MS) quantification protocol was developed for comparison purposes. Among the five test compounds, three preferred positive electrospray ionization (ESI) and two preferred negative ESI. As a result, both UPLC/MS/MS and HPLC/MS/MS analyses were performed by having the mass spectrometer collecting ESI multiple reaction monitoring (MRM) data in both positive and negative ion modes during a single injection. Peak widths for most standards were 4.8 s for the HPLC analysis and 2.4 s for the UPLC analysis. There were 17 to 20 data points obtained for each of the LC peaks. Compared with the HPLC/MS/MS method, the UPLC/MS/MS method offered 3-fold decrease in retention time, up to 10-fold increase in detected peak height, with 2-fold decrease in peak width. Limits of quantification (LOQs) for both HPLC and UPLC methods were evaluated. For UPLC/MS/MS analysis, a linear range up to four orders of magnitude was obtained with r2 values ranging from 0.991 to 0.998. The LOQs for the five analytes ranged from 0.08 to 9.85 ng/mL. Three levels of quality control (QC) samples were analyzed. For the UPLC/MS/MS protocol, the percent relative standard deviation (RSD%) for low QC (2 ng/mL) ranged from 3.42 to 8.67% (N = 18). The carryover of the UPLC/MS/MS protocol was negligible and the robustness of the UPLC/MS/MS system was evaluated with up to 963 QC injections.  相似文献   

20.
超高效液相色谱法检测土壤中的多环芳烃   总被引:7,自引:1,他引:6  
陈皓  刘颖  刘海玲  袁园  肖乾芬 《色谱》2008,26(6):769-711
采用二极管阵列(PDA)检测器,建立了超高效液相色谱(UPLC)定性定量分析土壤中16种多环芳烃(PAHs)的方法。并将该方法与传统高效液相色谱(HPLC)的分析性能进行了详细的比较。研究结果表明,采用UPLC法分析16种PAHs具有分析速度快(13.5 min)、检出限低(2~20 pg)、灵敏度高等优点。  相似文献   

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