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Low-voltage electroosmotic pumping using porous anodic alumina membranes

机译:使用多孔阳极氧化铝膜的低压电渗泵送

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This study demonstrated electroosmotic pumping with high flow rate per unit area at a rather low applied voltage by using alumina nano-porous membrane. The platinum mesh electrode is perpendicular to, and has direct contact with the nano-channel inlet for proving uniform electric field and for reducing the electric voltage drop in the reservoir. The measured flow rate versus electrolyte (KC1) concentration reveals two distinct characteristics. First, the flow rate is usually high at low concentrations (10~(-5) to 10~(-7) M) in which a maximum value occurs. Second, a remarkable drop of flow rate is seen when the concentration surpasses 10~(-4) M. The maximum flow rate achieved from this study is 0.09 mL/ min V cm~2 and the energy transfer efficiency is 0.43% at an operation voltage of 20 V. The mesh electrodes with 33 wire spacing are capable of providing an uniform electric field, the nano-porous membrane with a low electrolyte concentration provides the environment for strong overlapping of electric double layer, in association with the thin alumina membrane, leading to a high flow rate at a rather low applied voltage (20-80 V). The flow rate is comparable to the existing results whereas the corresponding operation voltage of this study is about one to two orders lower than most of the existing results.
机译:这项研究表明,使用氧化铝纳米多孔膜可以在较低的施加电压下以高单位面积流速进行电渗泵送。铂网状电极垂直于纳米通道入口并与纳米通道入口直接接触,以提供均匀的电场并减少储液罐中的电压降。测得的流速与电解质(KC1)浓度的关系揭示了两个不同的特征。首先,流速通常在出现最大值的低浓度(10〜(-5)至10〜(-7)M)下较高。其次,当浓度超过10〜(-4)M时,流量会显着下降。这项研究获得的最大流量为0.09 mL / min V cm〜2,并且在操作过程中能量传递效率为0.43%电压为20V。具有33根线距的网状电极能够提供均匀的电场,具有低电解质浓度的纳米多孔膜与薄的氧化铝膜结合,为双电层的强力重叠提供了环境,导致在较低的施加电压(20-80 V)下产生高流速。流速与现有结果相当,而本研究的相应工作电压比大多数现有结果低约一到两个数量级。

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