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1.
采用密闭高压消解法对样品进行消解,用电感耦合等离子体发射光谱法(ICP–AES)测定进口铜精矿中的铅、镉、砷、汞有害元素。铅、镉、砷、汞的工作曲线分别在0~10,0~1,0~4,0~0.6μg/mL范围内线性良好,线性相关系数大于0.999。各元素加标回收率均为91.0%~104.7%,相对标准偏差均小于3%(n=7)。将密闭高压消解法与电热板加热法和微波消解法进行了比对分析,结果显示,密闭高压消解–ICP–AES法适合用于铜精矿样品的消解与测定。  相似文献   

2.
提出了用微波消解-电感耦合等离子体质谱法测定有机肥料中砷、镉、铅、铬、汞等5种元素的方法。有机肥料样品(0.200 0~0.500 0g)加入硝酸10mL和过氧化氢溶液1mL,按程序升温微波消解,将消解液蒸发至2mL,用硝酸(1+99)溶液定容至50mL。用电感耦合等离子体质谱法测定上述样液中的砷、镉、铅、铬、汞等元素。各元素的检出限(3.3s/k)为0.015~0.040mg·kg~(-1),测定值的相对标准偏差(n=6)均小于5.0%。按标准加入法进行回收试验,测得回收率在98.0%~101%之间。  相似文献   

3.
建立了微波消解微波等离子体炬原子发射光谱法(MPT-AES)测定可可粉中铅、铬、镉含量的方法。对酸效应及共存离子干扰进行了详细考察。在最佳条件下,测得各元素的工作曲线相关系数均大于0.9990,铅、铬、镉的方法检出限分别为4.17μg·L-1、4.38μg·L-1、3.19μg·L-1,相对标准偏差(RSD)均小于3.85%,用MPT-AES法分析经微波消解处理的不同产地的可可粉,结果表明所测样品中重金属含量均符合国家限量标准,铅、铬、镉的加标回收率分别为95.2%~101.3%、96.4%~102.5%、95.7%~103.1%。  相似文献   

4.
微波消解-石墨炉原子吸收法测定酵母粉中的微量铅和镉   总被引:1,自引:0,他引:1  
本文采用微波消解-石墨炉原子吸收法直接测定酵母粉中微量铅和镉的含量。利用硝酸和过氧化氢消解样品,对微波消解的条件,基体改进剂的选择,铅原子化温度的效果以及常见元素对测定的干扰进行了研究。在优化的实验条件下,方法对铅和镉的检出限(3σ)分别为0.062 ng/mL和0.013 ng/mL,相对标准偏差(RSD)分别为0.64%~1.11%、0.75%~4.70%,加标回收率在95.00%~102.0%之间。本法已用于酵母粉中微量铅和镉的测定,分析结果与电感耦合等离子体-质谱(ICP-MS)法具有良好的一致性。  相似文献   

5.
建立了微波消解样品,电感耦合等离子体质谱法(ICP–MS)测定黔西南高砷土壤种植的砂仁中痕量铜、铅、砷、镉的分析方法。对微波消解条件进行了优化。为了避免消解试剂对质谱测定的干扰,选择硝酸–双氧水混合溶液(体积比为3∶1)作为微波消解试剂,采用ICP–MS测定消解液中铜、铅、砷、镉的含量。利用校正方程对砷、镉的质谱干扰进行校正。铜、铅、砷、镉4种元素的线性相关系数均大于0.999 2,检出限分别为0.073,0.048,0.39,0.062μg/L,测定结果的相对标准偏差小于4.5%(n=5)。各元素的加标回收率在96.0%~105.0%之间。该方法样品处理快速、简单,溶解率高,测定结果准确、可靠,适用于成批量砂仁样品中铜、铅、砷、镉微量元素的测定。  相似文献   

6.
采用微波消解法对聚碳酸酯(PC)样品进行前处理,使用电感耦合等离子体发射光谱(ICPOES)法测定聚碳酸酯中重金属铅、镉、汞、铬元素,通过对消解方式和消解试剂的研究,建立了ICP-OES法测定聚碳酸酯中重金属铅、镉、汞、铬元素的方法。结果表明,铅、镉、汞、铬加标回收率均在94.0%~105%,相对标准偏差(RSD)均小于4%,样品处理时间短,测定速度快,污染小,环保,有较高的加标回收率和精密度,适用于聚碳酸酯中重金属铅、镉、汞、铬的测定。  相似文献   

7.
为了研究哈密、若羌和和田红枣中铅、砷、镉、汞、铜、锌和16种稀土元素的含量情况,了解红枣重金属及稀土元素摄入的风险,建立同时检测红枣中铅、砷、汞、铜、锌和16种稀土元素的方法。红枣样品用微波消解法进行样品前处理,以电感耦合等离子体质谱法测定红枣中铅、砷、镉、汞、铜、锌和16种稀土元素的含量。各元素校准曲线的相关系数均大于0.999 0,检出限为0.01~0.05μg/L。加标回收率为92.1%~105.2%,测定结果的相对标准偏差为1.2%~3.6%(n=6)。用该方法测定苹果标准物质(GBW 10019),测定值与标准值一致。该方法适用于红枣类样品中多元素污染物快速检测及风险评估,红枣样品分析结果表明铅、砷、镉、汞、铜和稀土元素在3种红枣中的含量较低,风险监测数据表明红枣中存在重金属铅、镉摄入性风险。  相似文献   

8.
建立电感耦合等离子体质谱法(ICP–MS)测定食品接触纸制品中铬、镍、砷、镉、铅、汞6种重金属含量的方法。样品经微波消解处理后用ICP–MS进行测定,内标法定量。在优化实验条件下,测定汞元素的线性范围在0~10μg/L之间,测定铅、镉、铬、镍、砷元素的线性范围在0~100μg/L之间,相关系数均大于0.999。各元素的检出限为0.001~0.1 mg/kg,加标回收率为89.3%~116.0%,测定结果的相对标准偏差为3.5%~7.9%(n=6)。该方法样品处理简单,检测灵敏度高,适用于食品接触纸制品中铬、镍、砷、镉、铅、汞的检测。  相似文献   

9.
取硬金样品约0.1g,加入新配制的盐酸-硝酸(3+1)混合酸6mL,按消解程序进行微波消解。待消解结束后将溶液于80℃加热赶去氮氧化物,冷却至室温后用水定容至50mL,用电感耦合等离子体原子发射光谱法测定其中铅、砷、汞、镉的含量。各元素的质量浓度均在0.10~10.0mg·L~(-1)内与对应的发射强度呈线性关系,检出限(3s)为2.0~8.0mg·kg~(-1)。加标回收率为91.0%~103%。应用该方法分析了21批次3D硬金饰品,测定结果与电感耦合等离子体质谱法的一致,测定值的相对标准偏差(n=6)小于3.0%。  相似文献   

10.
建立微波消解–电感耦合等离子体质谱法测定酱卤肉中铬、砷、镉、铊、铅5种元素含量的检测方法。采用微波消解法处理酱卤肉样品,对预处理条件和仪器工作参数进行了优化,以内标校正法降低基体影响。结果表明,铬、砷、镉、铊、铅5种元素的质量浓度在0.1~50.0 μg/L范围内与质谱响应值具有良好的线性关系,相关系数均大于0.999,方法检出限为0.2~6.2 μg/kg。在3种加标浓度水平下平均回收率为72.4%~113.5%,测定结果的相对标准偏差为3.1%~7.7%(n=6)。该方法简便,快速,高效,准确,可为酱卤肉中铬、砷、镉、铊、铅的测定提供技术支持。  相似文献   

11.
采用微波消解样品-电感耦合等离子体原子发射光谱法同时测定镍精矿样品中铝、钙、钴、铬、铜、锰、镁、镍、铅、锌等10种金属元素的含量。0.200 0g试样置于消解罐中,先后加入盐酸2mL、硝酸6mL及氢氟酸1mL,密闭罐盖按设定的微波消解程序进行消解。试验选择铝、钙、钴、铬、铜、镁、锰、铅、锌和镍的分析线分别为308.215,317.933,228.616,267.716,324.745,279.079,257.610,220.353,206.200,231.604nm,配制工作曲线时采用基体匹配的方法消除基体干扰。方法用于镍钴矿标准样品(GBW 07283)和镍精矿实际样品的分析,此方法的测定值与认定值及国标方法的测定值相一致。方法的回收率在95.8%~103.1%之间,相对标准偏差(n=6)均小于4.5%。  相似文献   

12.
用硝酸-过氧化氢溶液(3+3)作为消解剂,微波消解法处理木薯淀粉等样品,采用电感耦合等离子体质谱法,选择适合的同位素元素,运用碰撞池技术(CCT)降低元素Cu、As的多原子离子干扰,测定样品溶液中Pb、Cu、Cd、As、Hg等元素的含量,各元素线性相关系数为0.9997 ~0.9999,元素的检出限(3sd)分别为pb...  相似文献   

13.
土壤样品经硝酸、氢氟酸和过氧化氢加热消解,采用石墨炉原子吸收光谱法测定其中铅和镉的含量。以磷酸铵作为基体改进剂,铅和镉的灰化温度分别为400℃,250℃,原子化温度分别为2 100℃,1 800℃。铅和镉的质量浓度分别在0.50~50.0,0.10~2.5μg.L-1范围内与其吸光度呈线性关系,检出限依次为6.5,0.4pg。应用此法分析了4个土壤标准样品,测定值与标准值相符,相对标准偏差(n=6)分别在1.5%~6.3%和2.3%~5.1%之间。铅、镉的加标回收率分别在85.4%~103.2%,91.5%~102.3%之间。  相似文献   

14.
A microwave procedure for the digestion of the NIST 1634b reference material "residual fuel oil" in closed pressurized vessels was developed in an attempt to facilitate routine analysis and obtain reproducible conditions or comparable results. The influence of sample size, reagent composition and volume, microwave power, and duration of heating on the digestion procedure was studied. Pressure and temperature inside the reaction vessels were monitored to determine the progression of the reaction and to develop optimal conditions. A nine-step heating program requiring 36.5 min with microwave power not exceeding 450 W in the pulsed mode was found suitable for the digestion of approximately 250 mg fuel oil with a mixture of nitric acid (5.0 mL) and hydrogen peroxide (2.0 mL). The reproducibility of microwave power was determined in terms of the relative standard deviations (n = 3) for temperature (2.7%) and pressure (4.9%) data. The vapor pressures obtained with 5.0 mL Milli-Q water (heated) in an 80-mL digestion vessel showed good agreement with literature data. The excess acid in the resulting digests was removed by evaporation and the concentrations of 24 elements (Ag, Al, As, Ba, Bi, Ca, Cd, Co, Cr, Cu, Fe, Hg, Mg, Mo, Ni, Pb, Sb, Sn, Sr, Ti, Tl, V, U, and Zn) were determined in the diluted digests by inductively coupled plasma mass spectrometry (ICP-MS). The experimental results were in good agreement with the certified and recommended concentrations for eight elements (Al, As, Co, Cr, Ni, Pb, V, Zn) in solutions obtained after one digestion step. An additional digestion step, consisting of intermediate cooling and venting stages, was required for the accurate determination of Fe. No agreement was reached for Ca and Ba even after two-step digestion. The proposed method of digestion provided precise results with relative standard deviations generally less than 5% for most of the elements determined.  相似文献   

15.
建立微波消解-电感耦合等离子体发射光谱(ICP-OES)测定汽车涂料中Pb,Cr,Se,Ba,Sb,As,Cd,Hg含量的方法。以HNO_3-H_2O_2(体积比为4∶1)混合酸消解样品,各元素分析谱线:Pb 220.353 nm,Cr 267.716 nm,Se196.090 nm,Ba 233.527 nm,Sb 217.581 nm,As 189.042 nm,Cd 228.802 nm,Hg 184.950 nm。8种元素测定结果的相对标准偏差为2.02%~12.94%(n=6);对白色、蓝色、红色汽车漆样品进行加标回收试验,Pb,Cr,Se,Ba,As,Cd,Hg,的加标回收率为81.26%~99.79%,Sb的回收率为62.43%~87.61%。该方法快速、简便,精密度、准确度较高,可用于汽车涂料中重金属含量的监控。  相似文献   

16.
建立电感耦合等离子体质谱法(ICP-MS)测定不同产地和批次地龙药材中铅(Pb)、砷(As)、汞(Hg)、镉(Cd)、铜(Cu)5种重金属元素的含量.采用微波消解进行样品前处理,结果表明:5种重金属元素的线性关系良好(r≥0.999 6),平均回收率在92.8%~95.2%范围内,方法的检出限在0.001 0~0.092 mg/kg范围内.方法灵敏度高,重复性好,方法准确.不同产地和批次的样品中5种重金属元素均有检出.地龙药材中Pb、As、Hg、Cd、Cu这5种重金属元素需要重点监控.  相似文献   

17.
采用微波消解法处理海洋贝类样品,用电感耦合等离子体质谱法测定样品中镉、铬、铜和铅等4种重金属元素的含量。选择111 Cd、53 Cr、63 Cu和208 Pb等待测元素的同位素克服了质谱干扰。4种元素分别在一定的质量浓度范围内呈线性,检出限(3s)在0.005~0.17μg.L-1之间。镉、铬、铜和铅的回收率分别为94.7%,102.1%,101.9%,105.3%;测定值的相对标准偏差(n=7)分别为4.3%,3.8%,1.5%,6.0%。  相似文献   

18.
A microwave procedure for the digestion of the NIST 1634b reference material “residual fuel oil” in closed pressurized vessels was developed in an attempt to facilitate routine analysis and obtain reproducible conditions or comparable results. The influence of sample size, reagent composition and volume, microwave power, and duration of heating on the digestion procedure was studied. Pressure and temperature inside the reaction vessels were monitored to determine the progression of the reaction and to develop optimal conditions. A nine-step heating program requiring 36.5 min with microwave power not exceeding 450 W in the pulsed mode was found suitable for the digestion of ~ 250 mg fuel oil with a mixture of nitric acid (5.0 mL) and hydrogen peroxide (2.0 mL). The reproducibility of microwave power was determined in terms of the relative standard deviations (n = 3) for temperature (2.7%) and pressure (4.9%) data. The vapor pressures obtained with 5.0 mL Milli-Q water (heated) in an 80-mL digestion vessel showed good agreement with literature data. The excess acid in the resulting digests was removed by evaporation and the concentrations of 24 elements (Ag, Al, As, Ba, Bi, Ca, Cd, Co, Cr, Cu, Fe, Hg, Mg, Mo, Ni, Pb, Sb, Sn, Sr, Ti, Tl, V, U, and Zn) were determined in the diluted digests by inductively coupled plasma mass spectrometry (ICP-MS). The experimental results were in good agreement with the certified and recommended concentrations for eight elements (Al, As, Co, Cr, Ni, Pb, V, Zn) in solutions obtained after one digestion step. An additional digestion step, consisting of intermediate cooling and venting stages, was required for the accurate determination of Fe. No agreement was reached for Ca and Ba even after two-step digestion. The proposed method of digestion provided precise results with relative standard deviations generally less than 5% for most of the elements determined.  相似文献   

19.
Investigations of microwave assisted drying of sample materials and microwave assisted evaporation of aqueous sample solutions and acidic digestion residues were accomplished by means of special rotors for the microwave digestion system MULTIWAVE. To check the results obtained by microwave assisted drying, the samples were also conventionally dried at 105 degrees C in an oven. The following samples have been dried: 10 g each of meat, fish, apple, cucumber, potato, mustard, yogurt, clay and marl; 1 g each of certified reference material TORT 2 (lobster hepatopancreas), BCR 278 (mussel tissue) and BCR 422 (cod muscle); 500 g garden mould. Microwave assisted drying takes 40 min for organic samples and 30 min for inorganic material. Important is a slow increase of microwave power during the first 20 min. The results agree well with conventional drying at 105 degrees C. Losses of As, Se and Hg have been investigated for 3 CRMs. Only Se shows losses in the range of 20%. Losses of As, Be, Cd, Co, Cr, Cu, Fe, Hg, Li, Mg, Mn, Mo, Ni, Pb, Sb, Se, Sr, Ti, Tl, V and Zn after evaporation of aqueous samples and acidic solutions after wet digestion, respectively, have been investigated. 50 mL aqueous solution was evaporated almost to dryness within 25 min. The recovery of Hg is 40-50%, of Se 90-95% and of the other elements 97-102%. 0.2 g each of TORT 2, BCR 278 and BCR 422 have been digested with 4 mL nitric acid and 1 mL hydrochloric acid by means of the microwave digestion system MULTIWAVE. The digestion residue was evaporated almost to dryness and dissolved again in 10 mL diluted nitric acid. In this case no element losses have been observed. The measured concentration of As, Cd, Cu, Fe, Mn, Hg, Pb, Mo, Ni, Se, Sr, V and Zn agree very well with the certified values. An important prerequisite for good recoveries is not to evaporate the solutions to complete dryness.  相似文献   

20.
在我国局部都存在不同程度的铅、镉、砷和铬的土壤和水资源污染,土壤和水域中的有毒有害元素经食物链累积在人体,对人们的身体造成极大的危害,因此对食品中这些限量元素进行准确高效定量非常必要。本文建立了微波消解-电感耦合等离子体质谱(ICP-MS)法对小麦粉中的Pb、Cd、As和Cr进行测量,测量方法采用内标法,内标元素选择Rh、In和Bi。另外对微波消解前处理方法和ICP-MS使用参数进行了优化,测量方法简单高效。工作标准曲线呈良好的线性关系,相关系数均大于0.9999。该方法采用GBW(E)100493小麦粉标准物质和NIST 1567b Wheat Flour对本实验所采用的方法进行验证,结果显示测量值和标准值一致,表明本实验中小麦粉中Pb、Cd、As和Cr的测定方法是准确可靠的。  相似文献   

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