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首页> 外文期刊>Analytical chemistry >Effect of Transport Parameters and Device Geometry on Extraction Kinetics and Efficiency in Direct Immersion Solid-phase Microextraction
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Effect of Transport Parameters and Device Geometry on Extraction Kinetics and Efficiency in Direct Immersion Solid-phase Microextraction

机译:输送参数与装置几何对直接浸没固相微萃取的萃取动力学和效率的影响

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摘要

An alternative strategy to increase mass transfer entails geometry optimization of the extraction systems including design of solid-phase microextraction (SPME) probes. In this work, a computational model was employed to elucidate practical aspects such as efficiency and kinetics of extraction by employing several new geometries. Extraction of a model analyte at static conditions with the configurations, such as thin-film, fiber, coated tip, and nanoparticles, was numerically simulated to obtain an in-depth understanding of the advantages and limitations of each geometry in microextraction and exhaustive modes. The attained results associated with the equilibration time dependency on shape were in good agreement with previously reported experimental observations. They demonstrate that the mass-transfer is highly dependent on the size and shape of the coatings and increases with a decrease in size of the devices particularly rapidly below 10 mu m caused by radial diffusion effect. Nevertheless, extractions performed using octadecyl-functionalized magnetic nanoparticles demonstrated that higher enrichment factors are achievable with the use of a fewer number of particles in comparison to factors achieved via exhaustive extraction, where a larger number of particles must be employed, confirming theoretical predictions. The conclusions reached are valid for any extraction method. The results obtained herein are very useful toward the design and optimization of future extraction technologies and approaches.
机译:增加传质的替代策略需要对萃取系统的几何优化,包括固相微萃取(SPME)探针的设计。在这项工作中,采用计算模型来阐明通过采用几个新几何形状来阐明提取的效率和动力学等实际方面。在数值上模拟静态条件下提取模型分析物,例如薄膜,纤维,涂覆的尖端和纳米颗粒,以便在微萃取和详尽模式下对每个几何形状的优点和限制进行深入理解。与平衡时间依赖性相关的达到的结果与先前报道的实验观察结果良好。他们证明了传质转移高度依赖于涂层的尺寸和形状,并随着由径向扩散效应引起的,通过径向扩散效应引起的装置的尺寸减小。然而,使用十八烷基官能化的磁性纳米粒子进行的提取证明,与通过详尽萃取所实现的因子相比,使用较少数量的颗粒可以实现更高的富集因子,其中必须采用较大数量的颗粒,确认理论预测。达到的结论对于任何提取方法都有效。本文获得的结果对于设计和优化未来的提取技术和方法非常有用。

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