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Tuning parameters of metal ion implantation within a microfluidicchannel

机译:微流入通道内金属离子植入的调整参数

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Applying electrical fields is a simple and versatile method to manipulate and reconfigure optofluidic devices. Several methods to apply electric fields using electrodes on polymers or in the context of lab-on-a-chip devices exist. In this paper, we utilize an ion-implanted process to pattern electrodes within a fluidic channel made of polydimethylsiloxane (PDMS). Electrode structuring within the channel is achieved by ion implantation at a 40° angle with a metal shadow mask. In previous work using the ion-implantation process, we demonstrated two possible applications in the context of lab-on-a-chip applications. Asymmetric particles were aligned through electro-orientation. Colloidal focusing and concentration was possible with negative dielectrophoresis. In this paper, we discuss the different electrode structures that are possible by changing the channel dimensions. A second parameter of ion implantation dosage prevents the shorting of electrodes on the side wall or top wall of the fluidic channel to the bottom. This allows for floating electrodes on the side wall or top wall. These type of electrodes help prevent electrolysis as the liquid is not in direct contact with the voltage source. Possible applications of the different electrode structures that are possible are discussed.
机译:应用电场是一种简单而多功能的方法来操纵和重新配置Optiguidic设备。存在使用聚合物上的电极或在芯片设备上的背景下应用电场的几种方法。在本文中,我们利用离子注入的方法在流体通道内的图案电极,由聚二甲基硅氧烷(PDMS)制成。通过与金属阴影掩模以40°角的离子注入来实现通道内的电极。在以前的工作中使用离子植入过程,我们在芯片在芯片应用中的背景下展示了两种可能的应用。不对称颗粒通过电取向对齐。胶体聚焦和浓度是可能的负介质介质。在本文中,我们讨论通过改变通道尺寸来实现不同的电极结构。离子注入剂量的第二参数防止了流体通道的侧壁或顶部壁上的电极短路到底部。这允许侧壁或顶壁上的浮动电极。这些类型的电极有助于防止电解,因为液体不与电压源直接接触。讨论了可能的不同电极结构的可能应用。

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