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High-Rate Assembly of Nanomaterials on Insulating Surfaces Using Electro-Fluidic Directed Assembly

机译:使用电流定向组件在绝缘表面上的纳米材料的高速组件

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Conductive or semiconducting nanomaterials-based applications such as electronics and sensors often require direct, placement of such nanomaterials on insulating surfaces.. Most fluicdic-based directed assembly techniques on insulating surfaces utilize capillary force and evaporation but are diffusion limited and slow. Electrophoretic-based assembly, on the other hand, is fast but can only be utilized for assembly on a conductive surface. Here, we present a directed assembly technique that enables rapid assembly of nanomaterials on insulating surfaces. The approach leverages and combines fluidic and electrophoretic assembly by applying the electric field through an insulating surface via a conductive film underneath. The approach (called electro-fluidic) yields an assembly process that is 2 orders of magnitude faster compared to fluidic assembly. By understanding the forces on the assembly process, we have demonstrated the controlled assembly of various types of nanomaterials that are conducting, semiconducting, and insulating including nanoparticles and single-walled carbon nanotubes on insulating rigid and flexible substrates. The presented approach shows great promise for making practical devices in miniaturized sensors and flexible electronics.
机译:导电或半导体基于纳米材料的基于电子和传感器的应用通常需要直接地放置在绝缘表面上的这种纳米材料。基于氟化的基于的定向组装技术在绝缘表面上使用毛细管力和蒸发,但蒸发是扩散有限的。另一方面,基于电泳的组件快速,但只能用于在导​​电表面上组装。这里,我们介绍了一种定向的组装技术,其能够在绝缘表面上快速组装纳米材料。该方法通过通过下面的导电膜施加通过绝缘表面来利用并结合流体和电泳组件。该方法(称为电流体)产生组装过程,与流体组件相比,比流体组件更快2个数量级。通过了解组装过程的力,我们已经证明了各种类型的纳米材料的受控组件,其导电,半导体和绝缘在绝缘刚性和柔性基板上的纳米颗粒和单壁碳纳米管。该方法对制造小型化传感器和柔性电子产品的实用装置表示了很大的承诺。

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