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Electrochemically driven micropump for fluid flow and delivery: toward a novel micropump design for miniaturized liquid chromatographic and flow injection analyses

机译:电化学驱动的微泵,用于流体流量和输送:朝着小型化液体色谱和流动注射分析的新型微泵设计

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This paper describes the development of a prototype fluid pumping system for incorporation into a miniaturized flow injection analyzer. The strategy couples the well-established capabilities of reagent-based flow injection analyses (FIA) with our novel concepts for the design of a miniaturized, low-power pumping system, i.e., an electrochemically driven micropump. The basis of pump actuation relies on the electrochemically induced surface tension changes at the electrolyte/mercury interface, resulting in a "piston-like" pumping process devoid of mechanically moving parts. We present herein the results from the preliminary performance tests of a miniaturized fluid flow system with the micropump. As described, the flow rates and pumping displacement volumes have been studied as a function of the amplitude and the frequency of the applied voltage waveform. Flow rates in the range of 5 to 1000 μL/min, displacement volumes as high as 10 μL per actuation cycle, and waveform frequencies up to 50 Hz have been demonstrated using a capillary column design for the flow system with ball-style check valves. Results using an optical detection format are presented as a concept demonstration of the integrated analysis system for a redox reaction. The long-range objective is to demonstrate that our pumping system can serve as a cornerstone for the advancement of field deployable FIA and liquid chromatographic (LC) instrumentation that meets the chemical monitoring needs for space exploration as well as in the environmental and industrial arenas.
机译:本文介绍了用于掺入小型化流动注射分析仪中的原型流体泵送系统的开发。该策略通过我们的新颖概念对基于试剂的流动注射分析(FIA)进行了良好的基于​​小型化的低功率泵送系统的概念,即电化学驱动的微泵。泵驱动的基础依赖于电解质/汞界面处的电化学诱导的表面张力变化,导致“活塞状”泵送过程没有机械移动部件。我们在本文中存在于具有微泵的小型化流体流动系统的初步性能测试的结果。如上所述,已经研究了流速和泵送位移体积作为施加电压波形的振幅和频率的函数研究。 5至1000μl/ min的流量率在5至1000μl/ min,每个致动循环的10μl高达10μl的流量体积,并且使用具有滚珠式止回阀的流动系统的毛细管柱设计来证明高达50Hz的波形频率。使用光学检测格式的结果作为氧化还原反应的综合分析系统的概念演示。远程目标是证明我们的泵送系统可以作为领域的基石,用于展开符合空间探索的化学监测需求以及环境和工业竞技场的化学监测需求。

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