Bukosky Scott C, Hashemi Aref, Rader Sean P, Mora Jeronimo, Miller Gregory H, Ristenpart William D
Department of Chemical Engineering , University of California Davis , Davis , California 95616 , United States.
Lawrence Livermore National Laboratory , Livermore , California 94551 United States.
Langmuir. 2019 May 28;35(21):6971-6980. doi: 10.1021/acs.langmuir.9b00313. Epub 2019 May 16.
Micron-scale colloidal particles suspended in electrolyte solutions have been shown to exhibit a distinct bifurcation in their average height above the electrode in response to oscillatory electric fields. Recent work by Hashemi Amrei et al. ( Phys. Rev. Lett., 2018, 121, 185504) revealed that a steady, long-range asymmetric rectified electric field (AREF) is formed when an oscillatory potential is applied to an electrolyte with unequal ionic mobilities. In this work, we use confocal microscopy to test the hypothesis that a force balance between gravity and an AREF-induced electrophoretic force is responsible for the particle height bifurcation observed in some electrolytes. We demonstrate that at sufficiently low frequencies, particles suspended in electrolytes with large ionic mobility mismatches exhibit extreme levitation away from the electrode surface (up to 50 particle diameters). This levitation height scales approximately as the inverse square root of the frequency for both NaOH and KOH solutions. Moreover, larger particles levitate smaller distances, while the magnitude of the applied field has little effect above a threshold voltage. A force balance between the AREF-induced electrophoresis and gravity reveals saddle node bifurcations in the levitation height with respect to the frequency, voltage, and particle size, yielding stable fixed points above the electrode that accord with the experimental observations. These results point toward a low-energy, non-fouling method for concentrating colloids at specific locations far from the electrodes.
悬浮在电解质溶液中的微米级胶体颗粒已被证明,在振荡电场作用下,其在电极上方的平均高度会出现明显的分叉现象。Hashemi Amrei等人近期的研究工作(《物理评论快报》,2018年,第121卷,第185504页)表明,当对具有不等离子迁移率的电解质施加振荡电势时,会形成稳定的、长程不对称整流电场(AREF)。在这项工作中,我们使用共聚焦显微镜来检验以下假设:重力与AREF诱导的电泳力之间的力平衡是某些电解质中观察到的颗粒高度分叉的原因。我们证明,在足够低的频率下,悬浮在具有大离子迁移率失配的电解质中的颗粒会表现出远离电极表面的极端悬浮现象(高达50个颗粒直径)。对于NaOH和KOH溶液,这种悬浮高度大致与频率的平方根成反比。此外,较大的颗粒悬浮距离较小,而在阈值电压以上,外加电场的大小影响很小。AREF诱导的电泳与重力之间的力平衡揭示了悬浮高度相对于频率、电压和颗粒大小的鞍结分叉,在电极上方产生了与实验观察结果相符的稳定固定点。这些结果指向了一种低能量、无污垢的方法,用于在远离电极的特定位置浓缩胶体。