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Power Generation by Reverse Electrodialysis in a Microfluidic Device with a Nafion Ion-Selective Membrane

机译:在带有Nafion离子选择膜的微流控装置中通过反向电渗析产生电能

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摘要

An energy conversion microchip consisting of two circular microchambers and a Nafion-filled microchannel is fabricated using standard micro-electro-mechanical systems (MEMS) techniques. When the chambers are filled with KCl solutions with different concentrations, the Nafion microchannel acts as a cation-selective membrane and results in the generation of electrical power through a reverse electrodialysis (RED) process. The current-potential characteristics of the Nafion membrane are investigated for devices with various microchannel lengths and electrolyte concentration ratios. It is shown that for a given voltage, the current and generated power increase with a reducing channel length due to a lower resistance. In addition, a maximum power density of 755 mW/m2 is obtained given an electrolyte concentration ratio of 2000:1 (unit is mM). The optimal device efficiency is found to be 36% given a channel length of 1 mm and a concentration ratio of 1000:1 (mM). Finally, no enhancement of the short circuit current is observed at higher concentration ratios.
机译:使用标准的微机电系统(MEMS)技术制造了由两个圆形微腔和一个充满Nafion的微通道组成的能量转换微芯片。当腔室中充满不同浓度的KCl溶液时,Nafion微通道充当阳离子选择性膜,并通过反向电渗析(RED)过程产生电能。研究了具有不同微通道长度和电解质浓度比的设备的Nafion膜的电流电势特性。结果表明,对于给定的电压,由于电阻较低,电流和产生的功率随通道长度的减小而增加。此外,如果电解质浓度比为2000:1(单位为mM),则可获得755 mW / m 2 的最大功率密度。在通道长度为1 mm,浓度比为1000:1(mM)的情况下,发现最佳器件效率为36%。最后,在较高的浓度比下,未观察到短路电流的增强。

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