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1.
单级高压微流量电渗泵的研究   总被引:1,自引:0,他引:1  
陈令新  关亚风 《分析化学》2003,31(7):886-889
设计了一种高压微流量电渗泵。泵体主要由高压电源、电渗柱、毛细通道、导电空心电极以及气泡去除器、压力传感器等构成。单级电渗泵可以给出0~20MPa范围的输出压力和nL~μL级输出流量。输出压强和输出流量取决于电压、填充柱阻力和流体性质。  相似文献   

2.
王蕾  何友昭  王晓葵  邓宁  付国妮  高勇 《分析化学》2006,34(10):1426-1428
建立了一种基于增压电渗泵驱动、整体柱分离和紫外检测相结合的电动流动分析系统。研究了载流溶液中甲醇的体积分数对电渗泵空载流量、输出压强、移动相流量和分离度的影响。在4950V的外加电压下,以含0.5mmol/L六亚甲基四胺的45%甲醇溶液为泵载流,电渗泵的流量和输出压强分别为0.58mL/min和0.79MPa,以泵载流为流动相,该系统对苯和萘进行了反相色谱分离。电动流动分析系统设备简单、操作方便、功能多样。对苯和萘的分离结果表明,电动流动分析系统可用于样品的色谱分离。  相似文献   

3.
肖红  谢世平  范剑雄  姚辉  韩钢 《色谱》2001,19(3):281-282
 用高效液相色谱法测定了人血浆中奥氮平的浓度。色谱条件 :采用岛津LC 6A型高效液相色谱仪 ;色谱柱为ZorbaxODS (15 0mm× 4 6mmi d ,粒径 5 μm) ;流动相为V(5 0mmol/L磷酸钠缓冲液 ,pH 7 2 )∶V(甲醇 )∶V(乙腈 ) =12∶10∶3的溶液 ;检测波长为 2 70nm ;流速为 1 0mL/min ;柱温 40℃ ;灵敏度 0 0 0 5AUFS ;纸速 2mm/min。实验结果显示 ,在上述条件下 ,该方法的线性范围为 15 μg/L~ 12 0 0 μg/L(r =0 9988) ,最低检测限为 3μg/L ,血浆中奥氮平的平均回收率为 (97 0 2± 3 11) % ,测定结果的日内平均相对偏差为 3 86 % (n =15 ) 。  相似文献   

4.
通过制备丙烯酸酯类整体柱电渗泵,在nL/s~μL/s级流量范围内,考察了操作电压、有机调节剂浓度、盐浓度、pH值等对流量的影响.实验结果表明,在3~17 kV范围内,操作电压与流量呈线性关系,线性相关系数达到0.9991;当选择乙腈(0.55~0.8 mmol/L浓度范围)与MES缓冲溶液混合作为输运溶液时,电渗泵流量随有机调节剂浓度增加而呈减小趋势,且当盐浓度在0.5~2.0 mmol/L范围内逐渐增加时,电渗泵流量逐渐减小;pH值在3~9时,电渗泵流量基本不变.结果表明, 丙烯酸酯类整体柱电渗泵较ODS柱电渗泵具有一定优势.  相似文献   

5.
黑火药余烬中无机阴离子的毛细管电泳方法研究   总被引:2,自引:0,他引:2  
 发展了一种用于黑火药余烬中无机阴离子测定的毛细管电泳分析方法。对缓冲溶液的组成及pH值、电渗流改性剂的浓度以及分离电压等条件进行了研究。选定条件 :分离电压为 - 2 0kV ,缓冲溶液为 5 0mmol/L的Na2 CrO4(pH 8 2 0 ) ,电渗流改性剂为 0 5mmol/L的溴化十六烷基三甲基铵 (CTAB) ,检测波长为 2 5 4nm。在上述条件下 ,5种阴离子在 4min内可完全分离。各组分迁移时间和峰面积的相对标准偏差 (RSD)分别为 0 17%~1 4 0 %和 3 9%~ 5 0 % ,最低检测限为 5 0 μmol/L~ 10 0 μmol/L。  相似文献   

6.
邱东方  王琳  王宏伟 《色谱》2001,19(5):461-463
 研究了合成甲氧苄胺嘧啶的前一步缩合反应产物α (3,4,5 三甲氧基苄基 ) β 甲氧基丙腈的两种同分异构体及反应物三甲氧基苯甲醛 (TMB)的定量分析方法 ,其中色谱柱为Nova PakC18柱 (4 μm ,3 9mmi d × 15 0mm) ,流动相组成为四氢呋喃 水 (体积比为 30∶70 ) ,流速为 1 0mL/min ,检测波长为 32 0nm。两种关键中间体在浓度为0 0 1mg·L-1~ 10mg·L-1时具有良好的线性关系 ,检测限分别为 2 0 μg/L和 1 0 μg/L。对实际样品进行测定 ,结果满意。该法为改进合成工艺 ,提高产品质量提供了一个快速有效的检测方法。  相似文献   

7.
秦永平  邹远高  梁茂植  余勤 《分析化学》2004,32(9):1216-1218
采用柱切换技术 荧光检测反相高效液相色谱法测定血浆中特布他林 (TB)浓度。使用LunaC8( 2 )和KromasilC18为分析柱 ( 1 5 0mm× 4.6mm ,5 μm)和预处理柱 ( 2 5mm× 4.6mm ,5 μm) ,流动相分别为pH 3 0 ,0 .0 3 3mol/L磷酸盐缓冲液∶甲醇∶乙腈 ( 92∶7∶1 )和水∶甲醇∶乙腈 ( 97∶2∶1 ) ,流速均为 1 .0ml/L。血浆样品经乙腈沉淀蛋白后进样 ,切换时间为 3 .2~ 4.2min。荧光检测 ,λex为 2 80nm ,λem为 3 0 9nm。以沙丁胺醇作内标 ,按内标法定量。标准曲线线性范围为 0 .8~ 3 2 μg/L ;最低定量限为 0 .8μg/L;TB和内标的保留时间分别为 8.7和 9.3min;日内RSD小于 4% ,日间RSD小于 9% ,方法回收率在 93 %~ 1 1 2 %。  相似文献   

8.
谢发之  张峰君  宣寒  葛业君  王颖 《分析化学》2012,(11):1720-1724
以制备的硫代乙酰胺键合硅胶为微柱填充材料,建立酸性条件(pH 1 0)下流动注射微柱选择性预富集,0.6 mol/L硫脲溶液洗脱,火焰原子吸收测定环境样品中痕量铜的方法。流动注射在线固相萃取的最佳采样流速为8.0 mL/min;最佳洗脱流速为5.0 mL/min,时间为60 s。在优化的条件下,采样体积为10和50 mL时,线性范围分别为2.0~100.0μg/L和0.5~30.0μg/L;检出限(3σ)分别为0.36和0.07μg/L;富集倍数分别为80和170;相对标准偏差分别为(n=9)3.5%和2.0%。研究了环境样品中常见阴阳离子对测定的干扰。应用于灌木枝叶样品(GBW07602)、标准模拟水样(GBW08608)样品和环境样品中铜的分离与富集,取得满意结果。  相似文献   

9.
采用单阀双阳离子交换树脂微柱并联 ,设计了双路采样逆向洗脱在线分离富集系统 ,该系统与原子吸收导数测量技术相结合 ,实现了在线分离富集 导数火焰原子吸收光谱法同时测定水中Cr 和Cr ,导数仪用 2mV min档位 ,富集 1min时 ,分析速度为 6 0样 h ,测定Cr 和Cr 的特征浓度分别为 0 .44 8μg L和0 793μg L(相当于 1%导数吸收度 ) ,线性范围分别为 0~ 90和 0~ 180 μg L ;对浓度分别为 10、2 0 μg LCr 和Cr 测定的相对标准偏差分别为 2 .85 %和 2 .85 %;检出限分别为 0 .85 5和 1.71μg L ;该法对实际水样加标回收率在 94.7%~ 10 4%之间。  相似文献   

10.
罗财红  郭志顺  孙静 《色谱》2010,28(5):487-490
建立了快速溶剂萃取(ASE)-气相色谱-三重四极杆质谱(GC-MS/MS)测定沉积物中酞酸酯的方法。样品用二氯甲烷-丙酮(体积比为1:1)混合溶剂在100 ℃、103.4 MPa (1500 psi)条件下经快速溶剂萃取、以5 mL/min的速率经凝胶渗透色谱(GPC)净化去除大分子干扰物后,采用GC-MS/MS分析测定。采用内标法定量,17种酞酸酯的检出限为0.05~0.40 μg/kg;回收率为50.5%~107.9%,相对标准偏差为3.5%~13.9%。采用替代物基体加入法对方法的性能进行了验证,3种替代物的回收率为65.3%~95.8%。该方法快速、灵敏度高,能同时准确定性定量测定17种酞酸酯。  相似文献   

11.
A packed-bed electroosmotic pump (EOP) was constructed and evaluated. The EOP consisted of three capillary columns packed in parallel, a gas-releasing device, Pt electrodes and a high-voltage power supply. The EOP could generate output pressure above 5.0 MPa and constant flow rate in the range of nl/min to a few microl/min for pure water, pure methanol, 2 mM potassium dihydrogenphosphate buffer, the buffer-methanol mixture and the pure water-methanol mixture at applied potentials less than 20 kV. The composition of solvent before/after pumping was quantitatively determined by using a gas chromatograph equipped with both flame ionization detector and thermal conductivity detector. It was found that there were no apparent changes in composition and relative concentrations after pumping process for a methanol-ethanol-acetonitrile mixture and a methanol-water mixture. Theoretical aspect of the EOP was discussed in detail. An capillary HPLC system consisting of the EOP, an injection valve, a 15 cm x 320 microm i.d., 5 microm Spherigel C18 stainless steel analytical column, and an on-column UV detector was connected to evaluate the performance of the EOP. A comparative study was also carried out with a mechanical capillary HPLC pump on the same system. The results demonstrated that the reproducibility of flow rate and the pulsation-free flow property of the EOP are superior to that of mechanical pump in capillary HPLC application.  相似文献   

12.
A novel designed electro-osmotic pump (EOP) with simple structure was assembled using three 20 cm x 530 microm i.d. fused-silica capillaries packed with 20 +/- 5 nm silica grains for capillary liquid chromatography. It was found that the pump could generate pressures over 20 MPa and several microL/min flow rate for most of the liquids being delivered with the applied voltage less than 10 kV. By increasing the pressure, decreasing the applied voltage and the electrical current, the thermodynamic efficiency was about 1-4%. A practical application of the EOP in a 20cm x 150 microm i.d. 3 microm C18 fused-silica analytical capillary column demonstrated the applicability of the pump.  相似文献   

13.
We integrate a high-pressure electroosmotic pump (EOP), a nanoflow gradient generator, and a capillary column into a miniaturized liquid chromatographic system that can be directly coupled with a mass spectrometer for proteomic analysis. We have recently developed a low-cost high-pressure EOP capable of generating pressure of tens of thousands psi, ideal for uses in miniaturized HPLC. The pump worked smoothly when it was used for isocratic elutions. When it was used for gradient elutions, generating reproducible gradient profiles was challenging; because the pump rate fluctuated when the pump was used to pump high-content organic solvents. This presents an issue for separating proteins/peptides since high-content organic solvents are often utilized. In this work, we solve this problem by incorporating our high-pressure EOP with a nano-flow gradient generator so that the EOP needs only to pump an aqueous solution. With this combination, we develop a capillary-based nano-HPLC system capable of performing nano-flow gradient elution; the pump rate is stable, and the gradient profiles are reproducible and can be conveniently tuned. To demonstrate its utility, we couple it with either a UV absorbance detector or a mass spectrometer for peptide separations.  相似文献   

14.
An electroosmotic pump (EOP) capable of generating pressure above 3 MPa and μl/min flow rate with reverse phase mobile phases of HPLC was constructed and evaluated. The pump consisted of three parallel connected fused silica capillary columns (25 cm×320 μm I.D.) packed with 2 μm silica materials, hollow electrodes, a high voltage DC power supply, and a liquid pressure transducer. The EOP was applied in a capillary liquid chromatographic system for mobile phase delivery instead of a mechanical pump. Standard samples containing thiourea, naphthalene, anthracene, phenanthrene and acetonitrile were separated on a 15 cm×320 μm I.D. 5 μm Chromasil C18 packed capillary column with acetonitrile/water as mobile phase.  相似文献   

15.
In this work, a novel molecularly imprinted polymer (MIP) monolithic column with integrated in‐column electroosmotic pump (EOP) was designed and successfully prepared to facilitate the capillary chromatography with MIP column. A silica‐based EOP was synthesized at the detection end of the MIP monolithic capillary column by so‐gel to provide the hydrodynamic driven force for the capillary chromatography. Because of large surface area and low fluidic resistance of the silica monolith,a strong and steady EOF was generated by silica‐based EOP, indicating that the EOP was quite compatible with MIP capillary column. With the sufficient EOF provided by EOP, the electro‐driven based capillary chromatographic separation of nitrophenol isomers was achieved in 4‐vinylpyridine‐based MIP monolithic capillary, which was originally proved infeasible because of the EOF shortage. No significant influence upon the specific recognition of the MIP was found due to the setting of EOP after the detection window of the column. The influence of experimental parameters on the EOF such as voltage and pH value of running buffer was investigated. The column was also evaluated by capillary liquid chromatographic mode to compare with EOP‐driven capillary chromatography. Higher column efficiency was obtained by EOP‐driven separation with improved peak shape. The results suggested that EOP‐supported technique would be a good way to solve the problem of weak EOF generation in electro‐driven capillary chromatography.  相似文献   

16.
The packed-bed electroosmotic pump (p-EOP) can manipulate liquid with pressure as high as 50 MPa and micro flowrate ranging from several nL/ min to several μL/min1-3. The p-EOP is matching to micro systems and suitable for developing chip liquid chromatography/electrochromatography for proteomics and high throughput HPLC for drug discovery4-6. There are some efforts to improve the performance p-EOP7-8 recently. In this paper, the nanosilica was chosen as the electroosmotic carrier to i…  相似文献   

17.
马继平  陈令新  关亚风 《化学进展》2007,19(11):1826-1831
电液动力学(EHD)研究的是在流体上施加电场后流体的流动。在微分析系统中,EHD的主要应用是电动泵(EKP)技术即电泳泵和电渗泵两个主要泵技术。这些独特的泵技术被广泛应用在推动极小截面的管道中化学和生物流体流动,管道尺寸从平方毫米到平方微米量级,甚至纳米通道量级。近年来,电渗泵出现了填充床、整体柱、平行多通道、纳米通道和微孔膜等各种新的形式,显示了其在微分析系统中的集成化和在毛细管液相色谱、流动注射分析和药物输送等应用研究中的潜力。本文对电动泵技术进行评述。  相似文献   

18.
毛细管等电聚焦和电渗泵驱动聚焦区带分离蛋白质   总被引:4,自引:0,他引:4  
建立了一种利用电渗泵驱动毛细管内的聚焦区带,实现毛细管电泳等电聚焦分离蛋白质的方法。通过控制电压来调节泵的输出流量,从而调节聚焦区带的迁移速度。适用于毛细管电泳等电聚焦两步法分离蛋白质等两性物质。考察了对牛血清白蛋白和溶菌酶两种粗提蛋白质混合物的分离,迁移时间的RSD分别为1.6%和1.3%,峰面积的RSD均为1.6%,证明方法可行。  相似文献   

19.
Nonmechanical pumping of liquids is of key importance for applications from the biomedical microfluidic chip to drug delivery systems. In this paper, a new electrokinetic pump (EOP) system with polycarbonate nanochannel membrane sandwiched between two membrane holders was constructed. The pump was tested with water and phosphate buffer at 1-6 V applied voltage, the maximum pressure and flow rate are 0.32 MPa (3.2 atm) and 4.2 mL/min for phosphate buffer, respectively. This proof-of-concept pump shows its potential use for drugs or chemical agents delivery by the usage of different membrane materials.  相似文献   

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