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Application of a Micro Free-Flow Electrophoresis 3D Printed Lab-on-a-Chip for Micro-Nanoparticles Analysis

机译:微纳米粒子分析的微自由流电泳3D印刷实验室芯片的应用

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摘要

The present work describes a novel microfluidic free-flow electrophoresis device developed by applying three-dimensional (3D) printing technology to rapid prototype a low-cost chip for micro- and nanoparticle collection and analysis. Accurate reproducibility of the device design and the integration of the inlet and outlet ports with the proper tube interconnection was achieved by the additive manufacturing process. Test prints were performed to compare the glossy and the matte type of surface finish. Analyzing the surface topography of the 3D printed device, we demonstrated how the best reproducibility was obtained with the glossy device showing a 5% accuracy. The performance of the device was demonstrated by a free-flow zone electrophoresis application on micro- and nanoparticles with different dimensions, charge surfaces and fluorescent dyes by applying different separation voltages up to 55 V. Dynamic light scattering (DLS) measurements and ultraviolet−visible spectroscopy (UV−Vis) analysis were performed on particles collected at the outlets. The percentage of particles observed at each outlet was determined in order to demonstrate the capability of the micro free-flow electrophoresis (µFFE) device to work properly in dependence of the applied electric field. In conclusion, we rapid prototyped a microfluidic device by 3D printing, which ensured micro- and nanoparticle deviation and concentration in a reduced operation volume and hence suitable for biomedical as well as pharmaceutical applications.
机译:本作本作描述了一种通过将三维(3D)印刷技术应用于快速原型的新型微流体自由流电泳装置,用于微型和纳米粒子收集和分析。通过添加制造工艺实现了装置设计的精确再现性和具有适当管互连的入口和出口端口的整合。进行测试印刷以比较光泽和遮罩类型的表面光洁度。分析3D印刷装置的表面形貌,我们证明了如何使用光泽装置获得最佳再现性,所述光泽器件显示为5%的精度。通过在具有不同尺寸,电荷表面和荧光染料的微型和纳米颗粒上的自由流区电泳施加来证明该装置的性能,通过施加不同的分离电压,电荷电压高达55 V.动态光散射(DLS)测量和紫外线可见对在出口处收集的颗粒上进行光谱学(UV-Vis)分析。测定在每个出口处观察到的颗粒的百分比,以便证明微自由流电泳(μFFE)装置的能力在施加的电场上正常工作。总之,我们通过3D打印快速地原型进行了一种微流体装置,其确保了在减少的操作体积中的微型和纳米粒子偏差和浓度,因此适用于生物医学以及药物应用。

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