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Comparison of the Conventional and Electroenhanced Direct-Immersion Solid-Phase Microextraction for Sampling of Nicotine in Biological Fluids of the Human Body

机译:常规和电增强直接浸入式固相微萃取对人体生物流体中尼古丁采样的比较

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摘要

A stainless steel fiber was made porous and adhesive by platinization and then coated by nanostructured polypyrrole (PPy), using an appropriate electrophoretic deposition (EPD) method. The morphological surface structure and functional groups of the PPy-coated fiber were studied using SEM (Scanning electron microscope) instrument. The prepared fiber was used for comparison of direct immersion (DI) and electroenhanced direct immersion solid-phase microextraction (EE-DI-SPME) of nicotine in human plasma and urine samples followed by gas chromatography flame ionization detector (GC-FID) determination. The effects of the influential experimental parameters on the efficiency of the DI-SPME and EE-DI-SPME methods, including the pH and ionic strength of the sample solution, applied Direct current (DC) voltage, extraction temperature and time and stirring rate, were optimized. Under the optimal conditions, the calibration curves for the DI-SPME-GC-FID and EE-DI-SPME-GC-FID methods were linear over the ranges of 0.1–10.0 μg mL−1 and 0.001–10.0 μg mL−1, respectively. The relative standard deviations (RSDs, n = 6) were found to be 6.1% and 4.6% for the DI and EE strategies, respectively. The LODs (limit of detection) of the DI-SPME-GC-FID and EE-DI-SPME-GC-FID methods were found to be 10 and 0.3 ng mL−1, respectively. The relative recovery values (for the analysis of 1 µg mL−1 nicotine) were found to be 91–110% for EE-DI-SPME and 75–105% for DI-SPME. The enrichment factors for DI-SPME and EE-DI-SPME sampling were obtained as 38,734 and 50,597, respectively. The results indicated that EE-SPME was more efficient for quantitation of nicotine in biological fluids. The developed procedure was successfully carried out for the extraction and measurement of nicotine in real plasma and urine samples.
机译:通过适当的电泳沉积(EPD)方法,通过镀铂处理使不锈钢纤维具有多孔性和粘性,然后通过纳米结构的聚吡咯(PPy)进行涂覆。使用SEM(扫描电子显微镜)仪器研究了涂覆PPy的纤维的形态表面结构和官能团。制备的纤维用于比较人血浆和尿液中尼古丁的直接浸入(DI)和电增强直接浸入固相微萃取(EE-DI-SPME),然后进行气相色谱火焰电离检测器(GC-FID)测定。影响性实验参数对DI-SPME和EE-DI-SPME方法效率的影响,包括样品溶液的pH和离子强度,施加的直流(DC)电压,萃取温度和时间以及搅拌速率,被优化。在最佳条件下,DI-SPME-GC-FID和EE-DI-SPME-GC-FID方法的校准曲线在0.1–10.0μgmL -1 和0.001范围内呈线性分别为–10.0μgmL -1 。 DI和EE策略的相对标准偏差(RSDs,n = 6)分别为6.1%和4.6%。发现DI-SPME-GC-FID方法和EE-DI-SPME-GC-FID方法的LOD(检出限)分别为10和0.3 ng mL -1 。相对回收率(分析1 µg mL -1 尼古丁)的EE-DI-SPME为91–110%,DI-SPME为75–105%。获得DI-SPME和EE-DI-SPME采样的富集因子分别为38,734和50,597。结果表明,EE-SPME对生物流体中尼古丁的定量更有效。成功进行了开发的程序,用于提取和测量实际血浆和尿液样品中的尼古丁。

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