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1.
为提高污水样品中雌酮(E1)的固相萃取回收率,应用响应面法(RSM)对影响固相萃取的关键参数进行了优化,建立了固相萃取回收率的二次多项式模型,分析了模型有效性和因子交互作用,确定了最佳固相萃取条件;并对实际污水处理厂进、出水样品中的E1进行了固相萃取和浓度检测。结果表明,影响E1固相萃取回收率的因素重要性依次为:洗脱体积>进样速率>洗脱速率。最佳固相萃取条件为:洗脱体积11.15 mL;进样速率10.62mL/min;洗脱速率4.15 mL/min;在此条件下,预测回收率最大可达81.82%。分别采用SBR、氧化沟和A2/O工艺的3座污水处理厂进水E1浓度分别为36.889.0、24.189.0、24.128.4和27.828.4和27.858.1 ng/L,对应去除率分别为62.8%58.1 ng/L,对应去除率分别为62.8%77.0%、49.3%77.0%、49.3%63.6%和56.1%63.6%和56.1%74.9%。3种污水处理工艺对E1均有一定的去除能力,但出水中残余E1仍远超过预测无效应浓度。  相似文献   

2.
比较了液液萃取和固相萃取两种方法对左炔诺孕酮的萃取效果,为含左炔诺孕酮水样分析预处理提供参考.运用高效液相色谱法检测了二氯甲烷、三氯甲烷、正己烷、乙酸乙酯4种有机溶剂和StrataTM-X(60 mg,3mL)固相萃取柱对左炔诺孕酮的萃取回收率;萃取回收率分别为:乙酸乙酯(97.22%)>二氯甲烷(91.89%)>正己...  相似文献   

3.
采用固相萃取技术富集海水中的666、DDT,并使用气相色谱进行测定。主要包括不同填料(C8、C18、C18-N)、SPE柱规格(500 mg/3 mL、500 mg/6 mL)、洗脱试剂、上样流速、水样pH和洗脱试剂体积6个因素对666、DDT富集效率的影响。最终确定最优条件为:采用500 mg/6 mL C18SPE小柱,调节海水pH=6,上样流速4~5mL/min,10 mL二氯甲烷洗脱。优化后的固相萃取-气相色谱方法测定海水中666、DDT加标10 ng/L回收率为75.7%~110.4%,精密度为1.16%~4.00%,方法检出限为0.19~1.20 ng/L。  相似文献   

4.
固相萃取技术预富集环境水样中邻苯二甲酸酯   总被引:29,自引:0,他引:29  
使用C18固相萃取柱,系统地研究了环境水样中邻苯二甲酸酯类化合物的固相萃取预富集方法,考虑影响回收率的4个主要因素,即水样流速、洗脱溶剂、洗脱溶剂用量及洗脱速率,利用正交试验进行萃取条件的优化.最后确定最佳萃取条件为:水样流速4m l·m in-1,洗脱溶剂为乙酸乙酯、洗脱溶剂用量2m l,洗脱速率2ml·m in-1.并探讨了其它影响萃取效果的因素,除邻苯二甲酸二辛酯(DEHP)外,邻苯二甲酸二甲酯(DMP)、邻苯二甲酸二乙酯(DEP)、邻苯二甲酸二丁酯(DBP)的固相萃取回收率在96.5% ~120% 范围内,相应化合物的液-液萃取回收率为92.9% ~120% . 表明固相萃取,在环境水样中的邻苯二甲酸酯类化合物分离富集方面可以取代液-液萃取. 同时,进行了固相萃取柱在不同条件下的贮存实验.  相似文献   

5.
本文结合气相色谱质谱选择离子(GCMS∑SIM)定量分析壬基酚含量,对固相萃取技术提取富集污水和再生水样品中痕量壬基酚的操作条件和参数进行了研究。研究结果表明,OasisRHLB固相萃取柱对壬基酚具有优良吸附保留性能,多级混合洗脱方式的洗脱效率达97.01%;测定结果准确度和精密度满足要求。  相似文献   

6.
环境水样中邻苯二甲酸酯固相膜萃取预富集方法   总被引:13,自引:0,他引:13       下载免费PDF全文
使用C18键合硅胶固相萃取膜,研究了环境水样中邻苯二甲酸酯(PAES)类化合物的固相膜萃取预富集方法,探讨了影响萃取效果的因素;并以环境水样为介质,比较了固相膜萃取与液-液萃取的富集效果.结果表明,4种PAEs膜萃取回收率均高于85%,与液-液萃取结果相近;同时还给出了实际水样中4种PAES固相膜萃取结果.  相似文献   

7.
选取固相萃取GC-MS法定量检测喷涂废水中四种邻苯二甲酸酯类(PAEs),运用正交设计法,研究了pH、洗脱剂、洗脱体积、洗脱速率和水样流速对废水中PAEs回收率的影响。结果表明,pH为2.5时回收率最佳(均100%);在该pH下,洗脱剂对4种PAEs的回收率影响最大,水样流速次之,洗脱速率与洗脱体积对4种PAEs的回收率影响相对较小。样品前处理最优参数为:水样流速8mL/min、洗脱剂为乙酸乙酯、洗脱体积4mL、洗脱速率2mL/min;该条件下4种PAEs的线性范围为0.2~8.0μg/mL,相关系数均0.99,喷漆废水中平均加标回收率为61.1%~103%,相对标准偏差为3.1%~14.6%,均可满足试验要求。  相似文献   

8.
建立了以HLB固相萃取柱和反相液相色谱法测定水中8种邻苯二甲酸酯类环境激素的方法,利用正交试验进行萃取条件的优化,确定固相萃取的优化条件为:洗脱剂组成为V(甲醇)∶V(乙醚)=1∶19,洗脱速率为1 0mL min,洗脱体积为9mL,清洗剂组成为V(甲醇)∶V(水)=1∶19。8种物质峰面积对浓度进行线性回归的相关系数均大于0 999,最低检出限为0 10~0 62μg L,回收率为75 1%~115 5%,相对标准偏差为0 9%~2 2%。同时将该方法应用于废水中邻苯二甲酸酯类环境激素的测定,检出DEP,BBP,DBP和DEHP4种邻苯二甲酸酯类环境激素。   相似文献   

9.
活性炭纤维萃取浓缩水样中微量有机磷农药   总被引:1,自引:1,他引:0  
采用活性炭纤维(ACF)为固相萃取剂填料,萃取测定水样中微量有机磷农药。研究分析了ACF用量、洗脱剂类型、农药初始质量浓度、水样过柱速度及pH等因素对萃取回收率的影响。结果表明:洗脱剂类型和ACF用量是显著的影响因素。最佳萃取条件为:含0 1μg L有机磷农药的1L加标水样,需0 2gACF和8mL二氯甲烷,水样过柱速度40mL min。pH对萃取影响不大。萃取回收率为80 7%~118%。   相似文献   

10.
建立了索氏提取-固相萃取-液相色谱法测定土壤中环境优先监测的6种酚类污染物监测方法。利用索氏提取和固相萃取法提取净化了土壤中6种酚类化合物,比较5种固相萃取柱萃取的效果,选择PSD固相萃取柱,优化了固相萃取条件,影响固相萃取回收率的4种因子显著性顺序为:水样p H上样速度洗脱液体积溶剂类型。最佳固相萃取条件:上样的水样p H=3,上样速度5 m L/min,洗脱溶剂为乙腈,洗脱溶剂体积是10.0 m L。酚类化合物的检出限为0.01~0.05 mg/kg,加标回收率在85.39%~105.82%之间,相对标准偏差RSD10%(n=7),该法操作方便,灵敏度高,可用于土壤中多种酚类化合物的测定。  相似文献   

11.
The method of enriching PCP( pentachlorophenol ) from aquatic environment by solid phase extraction (SPE) was studied.Several factors affecting the recoveries of PCP, including sample pH, eluting solvent, eluting volume and flow rate of water sample, were optimized by orthogonal array design(OAD). The optimized results were sample pH 4; eluting solvent, 100% methanol; eluting solvent volume, 2 ml and flow rate of water sample, 4 ml/min. A comparison is made between SPE and liquid-liquid extraction(LLE) method. The recoveries of PCP were in the range of 87.6%-133.6% and 79%-120.3% for SPE and LLE, respectively. Important advantages of the SPE compared with the LLE include the short extraction time and reduced consumption of organic solvents. SPE can replace LLE for isolating and concentrating PCP from water samples.  相似文献   

12.
A simple, rapid, and reproducible method is described employing solid-phase extraction (SPE) using dichloromethane followed by gas chromatography (GC) with flame ionization detection (FID) for determination of volatile organic compound(VOC) from the Buriganga River water of Bangladesh. The method was applied to detect the benzene, toluene, ethylbenzene, xylene and cumene(BTEXC) in the sample collected from the surface or 15cm depth of water. Two-hundred ml of n-hexane-pretreated and filtered water samples were applied directly to a C18 SPE column. BTEXC were extracted with dichloromethane and average concentrations were obtained as 0. 104 to 0.372 μg/ml. The highest concentration of benzene was found as 0.372 μg/ml with a relative standard deviation (RSD) of 6.2%, and cumene was not detected. Factors influencing SPE e.g., adsorbent types, sample load volume, eluting solvent, headspace and temperatures, were investigated. A cartridge containing a C18 adsorbent and using dichloromethane gave better performance for extraction of BTEXC from water. Average recoveries exceedina 90% could be achieved for cumene at 4℃ with a 2.7% RSD.  相似文献   

13.
为评价北京市城市河流地表水体中5种精神活性物质〔METH(甲基苯丙胺)、AMP(苯丙胺)、KET(氯胺酮)、EPH(麻黄碱)和HA(羟亚胺)〕的环境风险,通过对固相萃取柱(Oasis HLB、Oasis MCX、Oasis WAX和Oasis PRiME HLB)类型、水样酸化、洗脱剂类型及体积等条件的确定,建立了同时测定水环境中精神活性物质的固相萃取-液相色谱-质谱(SPE-LC-MS/MS)联用方法,并对北京市城市河流地表水体中5种精神活性物质的质量浓度水平进行了调查,采用RQ(风险熵)法进行了风险评价. 结果表明,在水样未酸化条件下,Oasis MCX柱对精神活性物质的回收率最高,使用含5%(V/V)氨水的甲醇作为洗脱液,5种精神活性物质的回收率可以达到81.8%~91.1%. 地表水水体基质加标结果表明,5种精神活性物质的加标回收率均大于75.5%,相对标准偏差均小于10.0%. 方法检出限为0.30~0.80 ng/L,定量限为1.00~2.68 ng/L. 北京市7条城市河流中5种精神活性物质的质量浓度在1.00~99.51 ng/L之间. EPH在所有采样点均被检出且质量浓度较高,ρ(EPH)平均值为22.79 ng/L;ρ(AMP)相对较低,在1.54~11.23 ng/L之间,但AMP检出率为97.06%;ρ(METH)较高,平均值为14.63 ng/L,最高值(99.51 ng/L)出现在坝河. 研究显示,北京市地表水中5种精神活性物质的RQ均小于0.1,表明其可能的环境风险较低,但由于精神活性物质本身具有生物活性,它们对城市河流水生生态系统产生的潜在危害不容忽视.   相似文献   

14.
In this paper, a method using solid-phase extraction (SPE) and gas chromatography-mass spectrometry (GC-MS) was developed to simultaneously analyze five taste and odor compounds in surface water, i.e., 2-methylisoborneol (2-MIB), 2,4,6-trichloroanisole (TCA), 2-isopropyl-3-methoxy pyrazine (IPMP), 2-isobutyl-3-methoxy pyrazine (IBMP), and trans-1,10-dimethyl-trans-9-decalol (geosmin, GSM). The mass spectrometry was operated in selective ion monitoring (SIM) mode. Three kinds of SPE columns and three eluting solvents were compared, the C18 column was chosen as optimum SPE column, and methanol was chosen as the optimum eluting solvent. It was found that the method showed good linearity in the range of 1–200 ng·L−1 and gave detection limits of 0.5–1.5 ng·L−1 for individual compounds. Good recoveries (93.5%–108%) and relative standard deviations (1.58%–7.31%) were also obtained. Additionally, concentrations of these taste and odor compounds in Jinan’s surface and drinking water were analyzed by applying this method, and the results showed that GSM and 2-MIB were the dominant taste and odor compounds in Jinan’s raw water.  相似文献   

15.
An analytical method based on TiO2 nanotubes solid-phase extraction (SPE) combined with gas chromatography (GC) was established for the analysis of seven polycyclic aromatic hydrocarbons (PAHs): acenaphtylene, acenaphthene, anthracene, fluorene, phenanthrene, fluoranthene and pyrene. Factors a ecting the extraction e ciency including the eluent type and its volume, adsorbent amount, sample volume, sample pH and sample flow rate were optimized. The characteristic data of analytical performance were determined to investigate the sensitivity and precision of the method. Under the optimized extraction conditions, the method showed good linearity in the range of 0.01–0.8 g/mL, repeatability of the extraction (RSD were between 6.7% and 13.5%, n = 5) and satisfactory detection limits (0.017–0.059 ng/mL). The developed method was successfully applied to the analysis of surface water (tap, river and dam) samples. The recoveries of PAHs spiked in environmental water samples ranged from 90% to 100%. All the results indicated the potential application of titanate nanotubes as solid-phase extraction adsorbents to pre-treat water samples.  相似文献   

16.
本文建立了分散液液微萃取结合气相色谱质谱联用法测定海水中三氯苯(TCBs)的方法。考察了萃取剂和分散剂的种类、体积、超声萃取时间、萃取温度等对模拟海水加标样品的萃取效率的影响,得到最佳萃取实验条件为:以丙酮为分散剂、氯苯为萃取剂,超声萃取时间为10 min,萃取温度为25℃。样品的加标回收率为97.8%~102.5%,相对标准偏差为2.8%~6.6%。1,3,5-,1,2,4-和1,2,3-TCB的方法检出限分别为1.5 g/L,0.5 g/L和2.0 g/L。该方法与顶空、液液萃取和固相萃取法相比具有检出限低、富集因子高、重现性好、操作简便、干扰小等优点。采用本方法对5个实际海水样品中的TCBs进行了定量检测,结果表明其中两种样品含有2~3种待测物,浓度范围为1.9~6.7 g/L。  相似文献   

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