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1.
建立一种快速溶剂萃取(ASE)-凝胶净化(GPC)-高效液相色谱(HPLC)法测定土壤中6种邻苯二甲酸酯(PAEs)的方法。土壤样品经二氯甲烷-丙酮(体积比为1∶1)快速溶剂萃取后,过Bio-Beads SX-3凝胶层析柱净化,收集12~28 min的GPC洗脱液,并进行HPLC-DAD检测分析。通过分段收集,消除了土壤中共存的16种多环芳烃在225 nm紫外波长下对6种PAEs测定的干扰。采用ZORBAX Eclipse Plus C_(18)(150×4.6 mm,5μm)反相色谱柱,以乙腈-水为流动相进行梯度洗脱,流速为1 mL/min。结果表明,6种PAEs的线性关系良好,相关系数大于0.999 9,方法检出限为2.7~11.5μg/kg,精密度的相对标准偏差为1.5%~9.5%,加标回收率为66.5%~102%。该方法适用于含多环芳烃的土壤中PAEs的准确测定。  相似文献   

2.
土壤中15种酞酸酯类化合物测定   总被引:5,自引:2,他引:3  
采用气相色谱-质谱联用仪(GC-MS)分析了东北某钢铁厂土壤中15种酞酸酯类化舍物(PAEs).结果表明,该方法对15种酞酸酯分离好,平均加标回收率为74.8%~121%,精密度RSD(n=5)在8.3%~13.9%之间,方法检出限为0.01~0.09mg/kg.方法操作简便、准确,具有较好的实用性.  相似文献   

3.
北京公园水体中邻苯二甲酸酯类物质的测定及其分布特征   总被引:2,自引:2,他引:2  
为了正确评估北京市公园水体受PAEs污染的程度,采集了北京11个公园湖水的水样,采用固相萃取-气相色谱联用技术检测了其中六种邻苯二甲酸酯类物质(PAEs)的含量,该方法加标回收率在73%~89.3%,RSD为5.9%~18.1%,检出限在0.40~4.58mg/L。实验结果为北京公园水体中总PAEs浓度在6.4~138.1μg/L,平均值为27.9μg/L,证明北京公园水体受到不同程度的PAEs污染,主要的污染物为邻苯二甲酸二丁酯(DBP)和邻苯二甲酸双(2-乙基己基)酯(DEHP),其中东南部以及西北部的公园污染较严重。分析了PAEs在公园湖水底泥中和水体中的分布特征,结果显示,PAEs在湖水底泥中的含量明显大于在水体中的含量。  相似文献   

4.
固相微萃取-气相色谱法测定水中酞酸酯类化合物   总被引:1,自引:1,他引:0  
建立了固相微萃取(SPME)-气相色谱(GC)法分析环境水样中痕量酞酸酯类化合物(PAEs)的方法。选用65 μm PDMS/CVB萃取纤维,在磁力搅拌转速为700 r/min、萃取温度为60℃条件下,对水样中的PAEs萃取富集50 min,然后直接注入GC进样口,在 250℃ 温度下解吸1.5 min后进行分析测定,6种PAEs能得到充分提取和分离。方法的检出限为0.010 8~0.029 3 μg/L。对水样进行3个质量浓度水平(0.025、0.125、0.25 μg/L)的加标实验,加标回收率为41.79%~132.80%,RSD为6.53%~18.74%(n=7),用该法测定了某制药厂的实际水样,测得DBP含量为0.018 6 μg/L,DEHP、 DMP、DEP、DOP、BBP均未检测到。  相似文献   

5.
建立了一种同时测定饮用水中22种邻苯二甲酸酯(PAEs)的高效液相色谱-三重四级杆/复合线性离子阱质谱方法:饮用水样品经针头过滤器过滤,选用Biphenyl液相色谱柱进行分离,以含0.1%甲酸的水溶液和含0.1%甲酸的甲醇溶液为流动相,电离模式为电喷雾正离子,选用多反应监测触发增强子离子扫描模式进行检测。结果表明,22种PAEs的灵敏度良好,定量限为0.001~0.1 μg/L。配制浓度为0.1~100.0 μg/L的混标溶液进行进样分析,分析结果显示,22种PAEs在该范围内的线性关系良好,相关系数均大于0.995,方法的平均回收率为82.9%~108.9%,相对标准偏差为0.9%~11.2%。同时,使用增强子离子扫描谱图进行搜库匹配,定性准确性高。该方法适用于饮用水中PAEs的检测。  相似文献   

6.
分别采用酸浸提法和碱消解法作为前处理方法,以液相色谱电感耦合等离子体质谱法(HPLC-ICP-MS)作为测定方法测定土壤中的有机汞(甲基汞、乙基汞和苯基汞),对2种前处理方法进行比对分析。结果表明,采用酸浸提法,3种有机汞的方法检出限为0.5~0.9μg/kg,甲基汞和乙基汞的加标回收率为72.4%~86.4%,相对标准偏差(RSD)均<9.3%,苯基汞的回收率均<40%,RSD为7.4%~10.2%;采用碱消解法,3种有机汞的方法检出限为0.3~0.4μg/kg,加标回收率为60.4%~106%,RSD均<8.6%。碱消解法相较于酸浸提法,具有更高的萃取效率,更好的回收率和重复性。  相似文献   

7.
基于EPA1694方法,应用超声波萃取-高效液相色谱-串联质谱技术,建立了沉积物中对乙酰氨基酚、林可霉素、甲氧苄啶、咖啡因、阿奇霉素、磺胺甲唑、泰乐菌素、地尔硫卓、卡马西平及氟西汀等10种药物和个人护理品(PPCPs)的分析检测方法。样品经超声萃取、离心和SAX阴离子交换柱净化,以高效液相色谱-串联质谱仪多反应监测(MRM)模式进行离子定性、定量分析。10种药物加标回收率实验结果表明:添加低浓度样品20 ng/g,回收率为61.1%~128.5%,相对标准偏差(RSD)为1.7%~17.5%(n=5);添加高浓度样品400 ng/g,回收率为66.4%~126.7%,RSD为2.3%~18.0%(n=5),最低检测限为0.12~4.46 ng/g。该方法具有检测限低和回收率高的特点,并经实际样品验证发现,该方法适用于检测沉积物中10种PPCPs化合物。  相似文献   

8.
建立了气相色谱法(GC)和高效液相色谱法(HPLC)测定水中苦味酸的分析方法,并对2种方法进行比较。GC法检出限为0.000 4 mg/L,线性范围为0.0~0.050 mg/L,加标回收率为92.3%~94.1%,相对标准偏差为4.6%~8.9%。HPLC法检出限为0.02 mg/L,线性范围为0.10~5.00 mg/L,加标回收率为93.7%~96.5%,相对标准偏差为1.3%~2.0%。2种方法相比,GC法灵敏度较高,可用于痕量分析,但操作烦琐,不能有效地将苦味酸与硝基酚类干扰物分离;而HPLC法虽然灵敏度较差些,但简单、快速、稳定性好、准确度高,可有效地将苦味酸与硝基酚类干扰物分离。  相似文献   

9.
建立了加速溶剂萃取-液相色谱法测定土壤中14种酞酸酯类化合物的方法。结果表明,该方法对14种酞酸酯分离度较好,加标回收率为67.1%~128%,精密度RSD(n=6)为5.2%~15.0%,方法检出限为0.021~0.034 mg/kg。该方法操作简便、准确,具有较好的实用性。  相似文献   

10.
以正己烷/丙酮混合溶剂(体积比为1∶1)为提取剂,采用Florisil柱净化、气相色谱电子捕获检测器测定土壤中菊酯类农药残留,优化了提取条件。4种菊酯类农药在0.010 mg/L~1.00 mg/L范围内线性良好,方法检出限为0.005 mg/L~0.010 mg/L,甲氰菊酯回收率为85.2%~103%,RSD为2.3%~5.4%;氯氰菊酯回收率为80.5%~103%,RSD为2.8%~6.7%;氰戊菊酯回收率为80.2%~103%,RSD为2.3%~6.0%;溴氰菊酯回收率为80.8%~103%,RSD为2.4%~6.2%。  相似文献   

11.
In this study, we screened for an economic, rapid, and efficient hypotoxic pretreatment method for organochlorine pesticides in soil samples for gas chromatography (GC) analysis. The analytical extraction efficiencies of 11 different extractants, nine types of solid-phase purification (SPP) cartridge packings, and three types of eluents for 13 organochlorine pesticides (OCPs) in spiked and natural Chinese red soil (Hydragric Acrisols) were evaluated using an ultrasonic extraction and solid-phase purification method. High percent recoveries (85-106%) were obtained for the 13 organochlorine pesticides in soil when petroleum ether/acetone/water (10:5:2, v/v) was used an extractant. They were purified using celite SPP cartridge packing and eluted with 9 mL of dichloromethane/petroleum ether (1:9, v/v). The OCPs purification pretreatment of Hydragric Acrisols, using the above method, meets the GC analysis requirements. Compared with other traditional pretreatment methods for OCPs in soil samples, this method has several advantages, such as a short extraction time, reducing the amount of solvent, having no emulsion phenomenon, and hypotoxicity to the laboratory technicians. The concentrations of 1,1,1,-trichloro-2(p-chlorophenyl)-2-(o-chlorophenyl) ethane (DDTs; 3.42-8.08 ng g(-1)) in field soils were higher than the hexachlorocyclohexane concentration (2.94-6.12 ng g(-1)). The 1,1-dichloro-2,2-bis(p-chlorophenyl) ethylene (p,p'-DDE)?+?1,1-dichloro-2,2-bis(p-chlorophenyl)-ethane (p,p'-DDD)/p,p'-DDT ratio in this field soil was approximately 2.7, suggesting that no new DDT pollution source was introduced into the sampling site.  相似文献   

12.
提出了沸水浴混合酸法消解,以异丙醇为增感剂,电感耦合等离子体质谱直接测定土壤和沉积物中硒的方法。实验表明2mol/L硝酸-4mol/L盐酸混酸能有效溶出土壤和沉积物中各种形态的硒。相对于1%硝酸基体,4%(V/V)异丙醇基体中硒的ICP-MS响应值提高了12.1倍;而且4%(V/V)异丙醇基体可有效抑制硒的质谱干扰。ICP发射功率和雾化气流速是影响异丙醇在ICP-MS测定过程增敏效应的主要因素。以78硒为测定同位素,方法检出限为0.005mg/kg,实际样品测定精密度均小于5%。用于测定土壤和沉积物国家标准样品并对其消解液进行加标回收实验,结果令人满意。  相似文献   

13.
Cadmium pollution resulted from fertilizer applications were studied by determining cadmium levels in agricultural and non-agricultural soils of Bafra and Çar?amba plains. Soil samples of 68 were collected from agricultural (34) and non-agricultural (34) areas. The sample of 2 g was placed in a test tube and digested with hydrochloric acid and nitric acid mixture (3:1, v/v) in an aluminum block. Taking up the evaporated residue was dissolved in 1% nitric acid and total cadmium concentrations were determined with GF-AAS. Mean level of cadmium contents were found in agricultural areas 0.162?±?0.078 for Çar?amba and 0.433?±?0.288 mg kg?1 for Bafra. The accuracy of the method was tested with determining cadmium contents of standard reference material and cadmium spiked soil samples.  相似文献   

14.
Pressurised fluid extraction (PFE) of polycyclic aromatic hydrocarbons (PAHs) from a certified reference material (CRM) 524 has been firstly optimised following a central composite design. The instrumental parameters of the PFE (pressure, temperature, extraction time and number of solvent cycles) were studied in order to obtain maximum extraction yields. Neither pressure nor extraction time or temperature seemed to have any significant effect on the extraction yield, therefore one extraction cycle was enough to exhaustively extract all the PAHs from CRM 524. Once the instrumental conditions were established, the extraction yields obtained with eight different solvents or solvent mixtures [acetone, dichloromethane, acetonitrile, acetone-dichloromethane (1 + 1 v/v), acetone-isohexane (1 + 1 v/v), isohexane, methanol and toluene] from the CRM 524 were compared and showed that the best recoveries were obtained with acetone-isohexane (1 + 1 v/v). Finally, the effect of sand, silt, clay and the organic matter content of soil was investigated with respect to recovery of PAHs by PFE with different solvents or solvent mixtures for aged soil samples. In this case, eight soils with different sand, silt, clay and organic matter contents were slurry spiked with PAHs and aged for 19 days. Three aliquots of each slurry spiked soil were extracted with the previously mentioned solvents and the results were studied by means of principal component analysis (PCA) of the whole data set (soil composition, solubility parameter of the solvent and recoveries of all PAHs) and partial least squares (PLS). Clay and organic matter content and the squared solubility parameter have the highest correlation with the recovery of PAHs from soil samples.  相似文献   

15.
Dissipation of fentrazamide in soil and water under flooded (anaerobic) conditions was studied. Fentrazamide was applied to soil at 100 g ha(-1). Soil was extracted with 0.1 N HCl?:?acetone (1?:?1 v/v) followed by partition and cleanup with silica SPE. Separation was achieved in an ODS-II column with a mobile phase of acetonitrile?:?water (70?:?30 v/v) and detection at 214 nm. Recovery of fentrazamide varied from 75.2-90.4% and 89.9-97.8% in soil and water, respectively. Fentrazamide dissipated rapidly and fentrazamide residues were not detected after 100 and 35 days of application in soil and water, respectively. Half life in soil and water was 9.06 and 3.66 days, respectively. Dissipation followed monophasic first order kinetics pattern. No fentrazamide was detected in soil, rice grain and rice straw at harvest of crop. Calibration curves for quantification were linear and relative standard deviation (RSD) was 1.78%. LOD for instrument was 0.002 μg mL(-1) and LOQ for methods were 0.005 μg g(-1) for soil and water.  相似文献   

16.
王荟  彭英  穆肃  章勇 《中国环境监测》2015,31(5):129-133
研究了提取溶剂效率、净化方式等因素对十氯酮测定的影响,对比了加速溶剂提取、微波萃取及超声波等提取方式,考察了不同电子轰击能量、碰撞能量下特征离子对的响应。建立了加速溶剂萃取,H2SO4净化分离,气相色谱法-三重四极杆质谱法测定土壤中十氯酮的分析方法。取5.0 g土壤干样,内标法定量,线性相关系数为0.999 7,加标回收率为91.7%~121%,相对标准偏差为3.4%(n=6),检出限为0.1 ng/kg。  相似文献   

17.
Liquid chromatography with hydride generation atomic absorption spectrometry as the detection system was applied to the separation and determination of inorganic tin, tributyltin, dibutyltin, monobutyltin, diphenyltin and monophenyltin. A reversed phase C18 column and a methanol/water/acetic acid (70:27:3, v/v/v) mixture containing 0.05%(v/v) triethylamine and 0.1%(w/v) tropolone as the mobile phase (isocratic elution) were used. Extraction of organotins from the samples was carried out using methanol containing 0.05%(w/v) tropolone, a process that was repeated twice. The supernatants were shaken with water and dichloromethane in a separating funnel and the organic phase was collected and evaporated to dryness. When the method was applied to the speciation of tin in fresh and canned mussels, no organotins above the detection limits were identified in any of the samples, inorganic tin being the only species detected. The reliability of the procedure was checked by analyzing the total tin content of the samples by electrothermal atomic absorption spectrometry and by speciation of tin in a certified reference material, mussel tissue (CRM 477). The method can be used for environmental monitoring of organotins contaminated samples.  相似文献   

18.
采用全自动石墨消解-原子荧光光度法对土壤总汞进行测定,确定最佳消解时间为1 h,消解液最佳用量为8.0 m L。方法在总汞质量浓度为0.2~2.0μg/L范围内具有良好的线性,相关系数为0.999 9,当取样量为0.500 0 g时,检出限为0.002 mg/kg;测定不同标准土壤样品总汞的结果均在保证值范围内,精密度为4.0%~7.0%,加标回收率为95.0%~108.5%;对甘肃省实际土壤及沉积物样品测定进一步验证了方法的适用性。该法适合大批量样品分析,对于提高工作效率有重要意义。  相似文献   

19.
采用吹扫捕集-气相色谱质谱法对土壤和沉积物中挥发性有机物进行分析,优化了实验条件,所有物质的相对标准偏差小于5.0%,土壤样回收率在78.2% ~99.8%之间,沉积物样的回收率在55.2%~95.2%之间.  相似文献   

20.
A soil with a relatively high Fe content (2.82% [w/w]) was loaded for up to one year with As(v) by equilibrating it with a solution containing 1000 mg l(-1) As(v) at a soil mass-to-solution ratio of 0.1 kg l(-1). The incorporation of As(v) into the soil and its distribution over the soil phases were monitored by sampling at strategic time intervals using an operationally defined five-step sequential extraction procedure (Wenzel et al., Anal. Chim. Acta, 2001, 436, 309) and subsequent As measurement. A multiple kinetic Langmuir model was developed to retrieve the dynamic parameters (adsorption and desorption rate constants, capacities and Langmuir equilibrium constants) for each of the soil phases by numerical fitting of the experimental adsorption data to the model. Under the equilibration conditions used the adsorption rate constants for all five operationally defined soil phases were very similar but the desorption rate constants decreased by a factor of ca. 150 from soil phase 1 (non-specifically sorbed As) to 5 (residual phases). This implies that As(v) incorporation "deeper" into the soil leads to stronger binding which is associated with the Langmuir equilibrium constants (adsorption rate constants/desorption rate constants). Equilibration of the soil with As(v) was complete in ca. 10 days with As(v) predominantly bound to soil phase 2 (specifically sorbed As) and soil phase 3 (amorphous and poorly crystalline hydrous oxides). X-Ray absorption spectroscopy techniques revealed that these binding characteristics may be related to adsorption of As(v) on Si- and/or Al-containing structures and natural hydrous iron oxide (HFO) surface sites, respectively. Since the model is independent of the initial As(v) concentration in the solution and the soil mass-to-solution ratio, the behaviour of the thus characterized soil-As(v) system can be predicted for a range of conditions. Simulations showed that in an accidental As(v) spill the soil studied would actively scavenge As(v) by instantaneous adsorption onto all soil phases followed by redistribution of As(v) from weaker binding sites to stronger ones over time.  相似文献   

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