{"title":"3-羟基-2-(4′-甲氧基苯基)-4-氧- 4h - 1 -苯并吡喃萃取分光光度法测定铌(V","authors":"N. Agnihotri","doi":"10.2174/1874065001206010039","DOIUrl":null,"url":null,"abstract":"Hydroxy-2-(4'-methoxyphenyl)-4-oxo-4H-l-benzopyran (HMPB) forms a yellow colored (1:3) complex with niobium (V), which is extracted into dichloromethane from 1.04-4.40 molL -1 HClO4 solution showing an absorption maximum at 398 - 412 nm (figure curve A: 1.0 μg Nb ml -1 versus blank; curve B: blank versus DCM) with Beer's law range of 0-1.3 μg Nb ml -1 , molar absorptivity of 3.764 10 4 L mol -1 cm -1 and the detection limit as 0.036 μg ml -1 . The results are highly reproducible with a standard deviation of ± 0.0037. The linear regression equation is Y=0.399X + 0.006 and the correlation coefficient, r = 1.0004 The method is free from the interference of a large number of analytically important elements. The proposed method handles satisfactorily the analysis of several samples of varying complexity. the niobium concentration range of 0-1.3 μg Nb ml -1 , with a molar absorptivity and Sandell's sensitivity of 3.764 10 4 L mol -1 cm -1 and 0.0025 μg Nb cm -2 , respectively at 405 nm. The linear regression equation of the method is Y=0.399X + 0.006 and the correlation coefficient, r = 1.0004. The method is highly reproducible with a standard deviation of ± 0.0037 and the detection limit 0.036 μg ml -1 . Out of a number of","PeriodicalId":90363,"journal":{"name":"The open analytical chemistry journal","volume":"8 1","pages":"39-44"},"PeriodicalIF":0.0000,"publicationDate":"2012-08-24","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"6","resultStr":"{\"title\":\"Extractive Spectrophotometric Determination of Niobium (V) Using 3- Hydroxy-2-(4'-Methoxyphenyl)-4-Oxo-4H-l-Benzopyran as a Complexing Agent\",\"authors\":\"N. Agnihotri\",\"doi\":\"10.2174/1874065001206010039\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Hydroxy-2-(4'-methoxyphenyl)-4-oxo-4H-l-benzopyran (HMPB) forms a yellow colored (1:3) complex with niobium (V), which is extracted into dichloromethane from 1.04-4.40 molL -1 HClO4 solution showing an absorption maximum at 398 - 412 nm (figure curve A: 1.0 μg Nb ml -1 versus blank; curve B: blank versus DCM) with Beer's law range of 0-1.3 μg Nb ml -1 , molar absorptivity of 3.764 10 4 L mol -1 cm -1 and the detection limit as 0.036 μg ml -1 . The results are highly reproducible with a standard deviation of ± 0.0037. The linear regression equation is Y=0.399X + 0.006 and the correlation coefficient, r = 1.0004 The method is free from the interference of a large number of analytically important elements. The proposed method handles satisfactorily the analysis of several samples of varying complexity. the niobium concentration range of 0-1.3 μg Nb ml -1 , with a molar absorptivity and Sandell's sensitivity of 3.764 10 4 L mol -1 cm -1 and 0.0025 μg Nb cm -2 , respectively at 405 nm. The linear regression equation of the method is Y=0.399X + 0.006 and the correlation coefficient, r = 1.0004. The method is highly reproducible with a standard deviation of ± 0.0037 and the detection limit 0.036 μg ml -1 . Out of a number of\",\"PeriodicalId\":90363,\"journal\":{\"name\":\"The open analytical chemistry journal\",\"volume\":\"8 1\",\"pages\":\"39-44\"},\"PeriodicalIF\":0.0000,\"publicationDate\":\"2012-08-24\",\"publicationTypes\":\"Journal Article\",\"fieldsOfStudy\":null,\"isOpenAccess\":false,\"openAccessPdf\":\"\",\"citationCount\":\"6\",\"resultStr\":null,\"platform\":\"Semanticscholar\",\"paperid\":null,\"PeriodicalName\":\"The open analytical chemistry journal\",\"FirstCategoryId\":\"1085\",\"ListUrlMain\":\"https://doi.org/10.2174/1874065001206010039\",\"RegionNum\":0,\"RegionCategory\":null,\"ArticlePicture\":[],\"TitleCN\":null,\"AbstractTextCN\":null,\"PMCID\":null,\"EPubDate\":\"\",\"PubModel\":\"\",\"JCR\":\"\",\"JCRName\":\"\",\"Score\":null,\"Total\":0}","platform":"Semanticscholar","paperid":null,"PeriodicalName":"The open analytical chemistry journal","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.2174/1874065001206010039","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 6
摘要
羟基-2-(4′-甲氧基苯基)-4-氧- 4h -l-苯并吡喃(HMPB)与铌(V)形成黄色(1:3)配合物,从1.04-4.40 mol -1 HClO4溶液中提取到二氯甲烷中,在398 - 412 nm处吸收最大(图曲线a: 1.0 μ Nb ml -1相对空白;曲线B:空白与DCM),比尔定律范围为0 ~ 1.3 μ Nb ml -1,摩尔吸光度为3.76410.4 L mol -1 cm -1,检出限为0.036 μ ml -1。结果重复性好,标准偏差为±0.0037。线性回归方程为Y=0.399X + 0.006,相关系数r = 1.0004,该方法不受大量重要分析元素的干扰。所提出的方法能令人满意地处理不同复杂程度的几种样品的分析。铌的浓度范围为0 ~ 1.3 μg Nb ml -1,在405 nm处的摩尔吸光度和桑德尔灵敏度分别为3.76410.4 L mol -1 cm -1和0.0025 μg Nb cm -2。方法的线性回归方程为Y=0.399X + 0.006,相关系数r = 1.0004。方法重复性好,标准偏差为±0.0037,检出限为0.036 μ ml -1。从…中
Extractive Spectrophotometric Determination of Niobium (V) Using 3- Hydroxy-2-(4'-Methoxyphenyl)-4-Oxo-4H-l-Benzopyran as a Complexing Agent
Hydroxy-2-(4'-methoxyphenyl)-4-oxo-4H-l-benzopyran (HMPB) forms a yellow colored (1:3) complex with niobium (V), which is extracted into dichloromethane from 1.04-4.40 molL -1 HClO4 solution showing an absorption maximum at 398 - 412 nm (figure curve A: 1.0 μg Nb ml -1 versus blank; curve B: blank versus DCM) with Beer's law range of 0-1.3 μg Nb ml -1 , molar absorptivity of 3.764 10 4 L mol -1 cm -1 and the detection limit as 0.036 μg ml -1 . The results are highly reproducible with a standard deviation of ± 0.0037. The linear regression equation is Y=0.399X + 0.006 and the correlation coefficient, r = 1.0004 The method is free from the interference of a large number of analytically important elements. The proposed method handles satisfactorily the analysis of several samples of varying complexity. the niobium concentration range of 0-1.3 μg Nb ml -1 , with a molar absorptivity and Sandell's sensitivity of 3.764 10 4 L mol -1 cm -1 and 0.0025 μg Nb cm -2 , respectively at 405 nm. The linear regression equation of the method is Y=0.399X + 0.006 and the correlation coefficient, r = 1.0004. The method is highly reproducible with a standard deviation of ± 0.0037 and the detection limit 0.036 μg ml -1 . Out of a number of