首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到19条相似文献,搜索用时 171 毫秒
1.
研究了疏水性离子液体[Emim] PF_6-邻菲咯琳萃取体系对废旧镍镉电池中镉、镍离子的萃取性能,考察了振荡时间、温度、平衡水相酸度和萃取剂用量时萃取性能的影响.在水相pH值为5.91、温度为80℃时,4.0mL4g/L的邻菲咯琳与3.0mL离子液[Emim] PF_6组成的萃取体系时废旧电池液中镉、镍离子萃取效果良好.同时研究了废旧离子液在不同时间及酸度下的反萃效果,在浓度为1.0mol/L的盐酸介质中反萃1h,镉、镍离子能较好地被反萃.  相似文献   

2.
合成了离子液体六氟磷酸1-丁基-3-甲基-咪唑[Bmim][PF_6],并以其为萃取剂,对结晶紫进行萃取。实验考察了溶液pH值、离子液体用量、盐的加入量、温度、共存离子等因素对结晶紫萃取率的影响。结果表明,溶液酸度在pH 3.2~6.0,在10.00 mL水中,离子液体加入量为0.40 mL时,离子液体对结晶紫的萃取率最大。结晶紫的质量浓度在0.1~2.0μg·mL~(-1)范围内与吸光度呈线性关系,相关系数R=0.9923。方法的检出限为0.02μg·mL~(-1),平均回收率在93.0%~96.6%之间。  相似文献   

3.
新型功能化离子液体的合成及液-液萃取钕(Ⅲ)的研究   总被引:2,自引:0,他引:2  
研究了新型功能化离子液体1-戊基-3-(3-乙基苯基膦酰基)丙基咪唑双(三氟甲基磺酰基)亚胺盐的合成及对Nd(Ⅲ)的萃取性能,考察了水相酸度、萃取时间、杂质离子等对萃取性能的影响。结果表明,在0.13g该离子液体中,萃取时间为30min,5 mL pH 9.0的Nd(Ⅲ)溶液浓度在0.1~5.0μg/mL时,其线性回归方程为Y=-29352+2.423×106ρ(μg/mL),线性相关系数和最低检测限分别为0.9982和0.0025μg/mL。同时研究了离子液体的回收利用,在5%HNO3介质中洗脱30 min,Nd(Ⅲ)洗脱率达86%以上,回收后的离子液体可再利用。  相似文献   

4.
离子液体双水相萃取分离苋菜红的研究   总被引:12,自引:0,他引:12  
建立了由亲水性离子液体四氟硼酸1-丁基-3-甲基咪唑([Bmim]BF4)和NaH2PO4形成的双水相体系萃取分离苋菜红的新方法.研究了盐的浓度、离子液体浓度、溶液酸度、其它共存物质对苋菜红萃取率的影响.结果表明,NaH2PO4加入量在2~2.5 g,离子液量在1.0~2.0 mL,苋菜红溶液量在1.5 mL,溶液酸度在pH 4~6范围,离子液体双水相体系对苋菜红有较高的萃取率(E%>90).用加入无机离子、不同类型表面活性剂和吸收光谱探讨了离子液体与苋菜红之间的作用.  相似文献   

5.
离子液体双水相体系萃取分离牛血清白蛋白   总被引:36,自引:0,他引:36  
邓凡政  郭东方 《分析化学》2006,34(10):1451-1453
建立了由亲水性离子液体四氟硼酸1-甲基-3-丁基咪唑([Bmim]BF4)和KH2PO4形成的双水相体系萃取分离牛血清白蛋白(BSA)的新方法。研究了不同盐及盐的浓度、离子液体浓度以及蛋白质用量、溶液酸度、其它共存物质对双水相成相及BSA萃取率的影响,结果表明,磷酸二氢钾盐浓度为80g/L,离子液体浓度在160~240mL/L,BSA的浓度为30~50mg/L,溶液酸度在pH4~8范围,离子液体双水相体系对BSA有较高的萃取率。用加入不同类型表面活性剂探讨了离子液体与蛋白质之间的作用。  相似文献   

6.
将离子液体、分散液相微萃取与超声萃取技术结合,采用疏水性离子液体1-丁基-3-甲基咪唑六氟磷酸盐([C4 MIM][PF6])为萃取剂,建立了超声辅助离子液体分散液相微萃取-高效液相色谱法分析废水中3种雌激素物质(己烯雌酚、双烯雌酚、己烷雌酚)方法.试验采用50μL的离子液体,考察了溶液体积、溶液pH值、超声时间、静置时间、离心时间等因素对富集效果的影响.最佳的萃取条件为:溶液体积为6 mL,甲醇体积0.3 mL,溶液pH值为2.0,超声时间6min,静置时间30min,离心时间10 min.在优化的萃取条件下,3种雌激素的富集倍数可达到96.8~112.4倍;方法的线性范围为0.5-100.0μg/L;检出限为0.25~0.50μ/L.对浓度为5.0μg/L的3种物质测定6次的相对标准偏差为9.2%~10.8%.  相似文献   

7.
离子液体双水相萃取荧光法测定维生素B6   总被引:1,自引:0,他引:1  
基于离子液体在盐的作用下能够形成双水相,用于目标物质的萃取,提出了离子液体-硫酸铵双水相萃取、荧光法测定痕量维生素B6的新方法.实验探讨了影响维生素B6萃取率的主要因素,如酸度、萃取剂的用量、时间等.在最适条件下,即λex/λem=342/418 nm,pH=8.69,离子液体和硫酸铵的用量分别为1.3mL、2.8g,...  相似文献   

8.
芦丁在离子液体双水相中分配性能   总被引:2,自引:1,他引:1  
建立了室温离子液体四氟硼酸1-丁基-3-甲基咪唑([Bmim]BF4)和NaH2PO4组成的双水相萃取体系并用于对芦丁的萃取分离研究。考察了离子液体用量、芦丁的浓度、盐的加入量、溶液酸度和加入其它物质对芦丁在两相中分配的影响。结果表明,离子液在1.0~2.5 mL,磷酸二氢钠加入量在1.0~2.0 g,加入卢丁溶液0.5~2.5 mL,酸度在pH值为2~7范围,卢丁在离子液体双水相体系中有较高的萃取率(E%>90)。除阳离子表面活性剂外,其余大部分物质不影响相比和卢丁的测定。离子液相中卢丁的最大吸收波长为358 nm,与乙醇水溶液中比较,最大吸收波长发生紫移,表明离子液与卢丁发生了作用。利用离子液体双水相体系,测定了银杏叶中卢丁的含量。  相似文献   

9.
采用功能化温控离子液体萃取-火焰原子吸收光谱法测定痕量镉。优化的试验条件如下:1离子液体的用量为0.25g;2溶液的pH为5.81;3离心时间30 min;4反萃取剂为2mol·L-1盐酸溶液5.00 mL;5超声时间为30 min;6反萃取3次。镉的质量浓度在1.20mg·L-1以内与其吸光度呈线性关系,检出限(3s/k)为0.027mg·L-1。方法应用于模拟水样的分析,测定值与参考值相符。加标回收率在102%~110%之间,测定值的相对标准偏差(n=3)均小于1.0%。  相似文献   

10.
酸性离子液体萃取-氧化模拟油品脱硫研究   总被引:6,自引:0,他引:6  
以酸性离子液体N-羧甲基吡啶硫酸氢盐(\[CH2COOHPy\]HSO4)为萃取剂和催化剂,过氧化氢为氧化剂,用于模拟油品(二苯并噻吩溶于正辛烷配制而成)萃取-氧化脱硫反应,考察过氧化氢用量、离子液体用量、反应温度和反应时间对脱硫率的影响。研究结果表明,当氧硫摩尔比(H2O2/S)为6,在10mL模拟油品中加入0.6mL离子液体, 50℃下反应40min,脱硫率可达99.7%。离子液体循环再生使用5次,脱硫率没有明显下降。  相似文献   

11.
建立了一种采用离子液体1-己基-3-甲基咪唑六氟磷酸([C6mim][PF6])为萃取剂,超声辅助离子液体液相微萃取-高效液相色谱法分析水样中加替沙星和氟罗沙星的方法。 实验考察了溶液酸度、离子液体用量等因素对萃取的影响。在pH值分别为3.3、2.1的加替沙星和氟罗沙星水样中,加入0.4 mL [C6mim][PF6],超声,离心,离子液体相直接用于HPLC进行分析。 该方法的线性范围为0.5~50 mg/L,测定加替沙星和氟罗沙星的相对标准偏差(n=5)为2.80%和5.93%,二者的检出限分别为0.46、0.97 μg/L,该方法萃取水样中加替沙星的加标回收率为80.5%~89.5%,氟罗沙星的加标回收率可达93.3%~99.0%。  相似文献   

12.
利用离子液体双水相萃取-高效液相色谱(HPLC)法测定了水中痕量氯酚类内分泌干扰物.以2,4-二氯酚(2,4-DCP)、2,6-二氯酚(2,6-DCP)和对氯苯酚(4-CP)为目标分析物,考察了影响离子液体双水相萃取率的主要因素,如分相盐的浓度、水相pH值、萃取时间及离子液体加人量.当NaH2PO4的浓度为0.5 g/...  相似文献   

13.
A method of ionic liquid salt aqueous two‐phase extraction coupled with high‐performance liquid chromatography has been developed for the analysis of seven rare ginsenosides including Rg6, F4, 20(S)‐Rg3, 20(R)‐Rg3, Rk3, Rk1, and Rg5 in Xue‐Sai‐Tong injection. The injection was mixed with ionic liquid 1‐butyl‐3‐methylimidazolium bromide aqueous solution, and a mixture was obtained. With the addition of sodium dodecyl sulfate and dipotassium phosphate into the mixture, the aqueous two‐phase mixture was formed after ultrasonic treatment and centrifuged. Rare ginsenosides were extracted into the upper phase. To obtain a high extraction factors, various influences were considered systematically, such as the volume of ionic liquid, the category and amount of salts, the amount of sodium dodecyl sulfate, the pH value of system, and the time of ultrasonic treatment. Under the optimal condition, rare ginsenosides in Xue‐Sai‐Tong injection were enriched and detected, the recoveries of seven rare ginsenosides ranged from 90.05 to 112.55%, while relative standard deviations were lower than 2.50%. The developed method was reliable, rapid and sensitive for the determination of seven rare ginsenosides in the injections.  相似文献   

14.
Room temperature ionic liquids (RTILs) have been used as novel solvents to replace traditional volatile organic solvents in organic synthesis, solvent extraction, and electrochemistry. The hydrophobic character and water immiscibility of certain ionic liquids allow their use in solvent extraction of hydrophobic compounds. In this work, a typical room temperature ionic liquid, 1-butyl-3-methylimidazolium hexafluorophosphate [C4mim][PF6], was used as an alternative solvent to study liquid/liquid extraction of heavy metal ions. Dithizone was employed as a metal chelator to form neutral metal-dithizone complexes with heavy metal ions to extract metal ions from aqueous solution into [C4mim][PF6]. This extraction is possible due to the high distribution ratios of the metal complexes between [C4mim][PF6] and aqueous phase. Since the distribution ratios of metal dithiozonates between [C4mim][PF6] and aqueous phase are strongly pH dependent, the extraction efficiencies of metal complexes can be manipulated by tailoring the pH value of the extraction system. Hence, the extraction, separation, and preconcentraction of heavy metal ions with the biphasic system of [C4mim][PF6] and aqueous phase can be achieved by controlling the pH value of the extraction system. Preliminary results indicate that the use of [C4mim][PF6] as an alternate solvent to replace traditional organic solvents in liquid/liquid extraction of heavy metal ions is very promising.  相似文献   

15.
A simple and rapid method based on ultrasonic extraction and capillary electrophoresis using 1‐butyl‐3‐methylimidazolium tetrafluoroborate as dynamic coating and background electrolyte was developed. The method was applied to the separation and determination of three azo dyes in two lipsticks. To increase extraction rate and yield, lipstick samples were coated on a glass slide before ultrasonic extraction. The dyes were extracted by ultrasonic extraction for 30 min, and then determined by capillary electrophoresis. Several experimental factors, such as ionic liquid concentration, pH value of background electrolyte and applied voltage, were examined and optimized. Under the optimal conditions, three azo dyes were completely separated within 12 min, and the detection limits for the three azo dyes ranged from 0.33 to 0.88 μg/mL. The recoveries were in the range of 96.8% to 108.8%.  相似文献   

16.
Room temperature ionic liquids are regarded as “Green solvents” for their nonvolatile and thermally stable properties. They are employed to replace traditional volatile organic solvents in organic synthesis, solvent extraction, and electrochemistry. In this work, a water immiscible room temperature ionic liquid, 1‐butyl‐3‐methylimidazolium hexafluorophosphate [C4mim][PF6], was used as an alternative solvent for liquid/liquid extraction of copper ions. Metal chelators, including dithizone, 8‐hydroxyquinoline, and 1‐(2‐pyridylazo)‐2‐naphthol, were employed to form neutral metal‐chelate complexes with copper ions so that copper ions were extracted from aqueous solution into [C4mim][PF6]. The parameters that affect the extraction of copper ions with this biphasic system were investigated. The extraction behavior in this novel biphasic system is shown to be consistent with that of traditional solvents. For example, the extraction with this biphasic system is strongly pH dependent. So, the extraction efficiency of coppers ion from an aqueous phase can be manipulated by tailoring the pH value of the extraction system. Hence, the extraction, separation and preconcentraction of copper ions can be accomplished by controlling the pH value of the extraction system. It appears that the use of ionic liquid as an alternate solvent system in liquid/liquid extraction of copper ions is very promising.  相似文献   

17.
The liquid-liquid microextraction (LLME) was developed for extracting sudan dyes from red wine and fruit juice. Room temperature ionic liquid was used as the extraction solvent. The target analytes were determined by high-performance liquid chromatography. The extraction parameters were optimized. The optimal conditions are as follows: volume of [C(6)MIM][PF(6)] 50 μL; the extraction time 10 min; pH value of the sample solution 7.0; NaCl concentration in sample solution 5%. The extraction recoveries for the analytes in red wine and fruit samples are 86.79-108.28 and 68.54-85.66%, whereas RSDs are 1.42-5.12 and 1.43-6.19%, respectively. The limits of detection and quantification were 0.428 and 1.426 ng/mL for sudan I, 0.938 and 3.127 ng/mL for sudan II, 1.334 and 4.445 ng/mL for sudan III, 1.454 and 4.846 ng/mL for sudan IV, respectively. Compared with conventional liquid-liquid extraction (CLLE) and ultrasonic extraction (UE), when LLME was applied, the sample amount was less (LLME: 4 mL; CLLE: 10 mL; UE: 10 mL), the extraction time was shorter (LLME: 15 min; CLLE: 110 min; UE: 50 min) and the extraction solvent amount was less (LLME: 0.05 mL IL; CLLE: 15 mL hexane; UE: 20 mL hexane). The proposed method offers a simple, rapid and efficient sample preparation for determining sudan dyes in red wine and fruit juice samples.  相似文献   

18.
A liquid‐phase microextraction technique was developed using dispersive liquid‐liquid microextraction based on solidification of floating organic drop combined with flame atomic absorption spectrometry, for the extraction and determination of trace amounts of cobalt in water samples. Microextraction efficiency factors, such as the type and volume of extraction and dispersive solvents, pH, extraction time, the chelating agent amount, and ionic strength were investigated and optimized. Under optimum conditions, an enrichment factor of 160 was obtained from 10.0 mL of water sample. The calibration graph was linearin the range of 1.15‐110 μg L?1 with a detection limit of 0.35 μg L?1. The relative standard deviation for ten replicate measurements of 10 and 100 μg L?1 of cobalt were 3.26% and 2.57%, respectively. The proposed method was assessed through the analysis of certified reference water or recovery experiments.  相似文献   

19.
Huahua Bai  Guohong Xie 《Talanta》2010,80(5):1638-1642
Hydrophobic ionic liquid could be dispersed into infinite droplets under driving of high temperature, and then they can aggregate as big droplets at low temperature. Based on this phenomenon a new liquid-phase microextraction for the pre-concentration of lead was developed. In this experiment, lead was transferred into its complex using dithizone as chelating agent, and then entered into the infinite ionic liquid drops at high temperature. After cooled with ice-water bath and centrifuged, lead complex was enriched in the ionic liquid droplets. Important parameters affected the extraction efficiency had been investigated including the pH of working solution, amount of chelating agent, volume of ionic liquid, extraction time, centrifugation time, and temperature, etc. The results showed that the usually coexisting ions containing in water samples had no obvious negative effect on the recovery of lead. The experimental results indicated that the proposed method had a good linearity (R = 0.9951) from 10 ng mL−1 to 200 ng mL−1. The precision was 4.4% (RSD, n = 6) and the detection limit was 9.5 ng mL−1. This novel method was validated by determination of lead in four real environmental samples for the applicability and the results showed that the proposed method was excellent for the future use and the recoveries were in the range of 94.8-104.1%.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号