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Key parameters controlling the performance of catalytic motors

机译:控制催化电动机性能的关键参数

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The development of autonomous microanomotors driven by self-generated chemical gradients is a topic of high interest given their potential impact in medicine and environmental remediation. Although impressive functionalities of these devices have been demonstrated, a detailed understanding of the propulsion mechanism is still lacking. In this work, we perform a comprehensive numerical analysis of the key parameters governing the actuation of bimetallic catalytic micropumps. We show that the fluid motion is driven by self-generated electro-osmosis where the electric field originates by a proton current rather than by a lateral charge asymmetry inside the double layer. Hence, the surface potential and the electric field are the key parameters for setting the pumping strength and directionality. The proton flux that generates the electric field stems from the proton gradient induced by the electrochemical reactions taken place at the pump. Surprisingly the electric field and consequently the fluid flow are mainly controlled by the ionic strength and not by the conductivity of the solution, as one could have expected. We have also analyzed the influence of the chemical fuel concentration, electrochemical reaction rates, and size of the metallic structures for an optimized pump performance. Our findings cast light on the complex chemomechanical actuation of catalytic motors and provide important clues for the search, design, and optimization of novel catalytic actuators. (C) 2016 AIP Publishing LLC.
机译:鉴于其对医学和环境修复的潜在影响,由自生化学梯度驱动的自主微/纳米电机的开发是一个高度关注的话题。尽管已展示了这些设备令人印象深刻的功能,但仍缺乏对推进机制的详细了解。在这项工作中,我们对控制双金属催化微型泵致动的关键参数进行了全面的数值分析。我们表明,流体运动是由自生的电渗透驱动的,其中电场由质子电流而不是由双层内部的横向电荷不对称性产生。因此,表面电势和电场是设置泵浦强度和方向性的关键参数。产生电场的质子通量源于在泵处发生的电化学反应引起的质子梯度。令人惊讶的是,电场以及因此的流体流动主要是由离子强度而不是由溶液的电导率控制的,正如人们所期望的那样。我们还分析了化学燃料浓度,电化学反应速率和金属结构尺寸对优化泵性能的影响。我们的发现揭示了催化电动机的复杂化学机械致动,并为新型催化致动器的搜索,设计和优化提供了重要线索。 (C)2016 AIP出版有限责任公司。

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