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Catalytically induced electrokinetics for motors and micropumps

机译:电机和微型泵的催化感应电动势

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We have explored the role of electrokinetics in the spontaneous motion of platinum-gold nanorods suspended in hydrogen peroxide (H2O2) solutions that may arise from the bimetallic electrochemical decomposition of H2O2. The electrochemical decomposition pathway was confirmed by measuring the steady-state short-circuit current between platinum and gold interdigitated microelectrodes (IMEs) in the presence of H2O2. The resulting ion flux from platinum to gold implies an electric field in the surrounding solution that can be estimated from Ohm's Law. This catalytically generated electric field could in principle bring about electrokinetic effects that scale with the Helmholtz-Smoluchowski equation. Accordingly, we observed a linear relationship between bimetallic rod speed and the resistivity of the bulk solution. Previous observations relating a decrease in speed to an increase in ethanol concentration can be explained in terms of a decrease in current density caused by the presence of ethanol. Furthermore, we found that the catalytically generated electric field in the solution near a Pt/Au IME in the presence of H2O2 is capable of inducing electroosmotic fluid flow that can be switched on and off externally. We demonstrate that the velocity of the fluid flow in the plane of the IME is a function of the electric field, whether catalytically generated or applied from an external current source. Our findings indicate that the motion of PtAu nanorods in H2O2 is primarily due to a catalytically induced electrokinetic phenomenon and that other mechanisms, such as those related to interfacial tension gradients, play at best a minor role.
机译:我们已经研究了电动学在悬浮于过氧化氢(H2O2)溶液中的铂金纳米棒自发运动中的作用,这可能是由H2O2的双金属电化学分解引起的。通过在存在H2O2的情况下测量铂和金指状微电极(IME)之间的稳态短路电流,可以确认电化学分解途径。从铂到金的最终离子通量暗示着周围溶液中的电场,该电场可以根据欧姆定律进行估算。原则上,这种催化产生的电场可以引起电动势,该电动势与Helmholtz-Smoluchowski方程成比例。因此,我们观察到双金属棒速度与本体溶液的电阻率之间存在线性关系。可以将速度降低与乙醇浓度增加相关的先前观察结果可以用乙醇的存在引起的电流密度的降低来解释。此外,我们发现在H2O2存在下,Pt / Au IME附近的溶液中催化生成的电场能够诱导电渗流,该流可以在外部打开和关闭。我们证明,IME平面中流体的流动速度是电场的函数,无论是催化生成还是从外部电流源施加。我们的发现表明,PtAu纳米棒在H2O2中的运动主要是由于催化诱导的电动现象,而其他机制(例如与界面张力梯度有关的机制)充其量只是次要的作用。

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