Snashall Kaspar, Constantinou Marios, Shkunov Maxim
Advanced Technology Institute, Electrical and Electronic Engineering, University of Surrey.
Advanced Technology Institute, Electrical and Electronic Engineering, University of Surrey;
J Vis Exp. 2017 Dec 7(130):56408. doi: 10.3791/56408.
Flow-assisted dielectrophoresis (DEP) is an efficient self-assembly method for the controllable and reproducible positioning, alignment, and selection of nanowires. DEP is used for nanowire analysis, characterization, and for solution-based fabrication of semiconducting devices. The method works by applying an alternating electric field between metallic electrodes. The nanowire formulation is then dropped onto the electrodes which are on an inclined surface to create a flow of the formulation using gravity. The nanowires then align along the gradient of the electric field and in the direction of the liquid flow. The frequency of the field can be adjusted to select nanowires with superior conductivity and lower trap density. In this work, flow-assisted DEP is used to create nanowire field effect transistors. Flow-assisted DEP has several advantages: it allows selection of nanowire electrical properties; control of nanowire length; placement of nanowires in specific areas; control of orientation of nanowires; and control of nanowire density in the device. The technique can be expanded to many other applications such as gas sensors and microwave switches. The technique is efficient, quick, reproducible, and it uses a minimal amount of dilute solution making it ideal for the testing of novel nanomaterials. Wafer scale assembly of nanowire devices can also be achieved using this technique, allowing large numbers of samples for testing and large-area electronic applications.
流动辅助介电泳(DEP)是一种用于纳米线可控且可重复定位、排列和选择的高效自组装方法。DEP用于纳米线分析、表征以及基于溶液的半导体器件制造。该方法通过在金属电极之间施加交变电场来工作。然后将纳米线制剂滴到位于倾斜表面上的电极上,利用重力使制剂形成流动。纳米线随后会沿着电场梯度并在液流方向上排列。可以调节电场频率以选择具有更高导电性和更低陷阱密度的纳米线。在这项工作中,流动辅助DEP被用于制造纳米线场效应晶体管。流动辅助DEP具有多个优点:它允许选择纳米线的电学性质;控制纳米线长度;将纳米线放置在特定区域;控制纳米线的取向;以及控制器件中纳米线的密度。该技术可以扩展到许多其他应用,如气体传感器和微波开关。该技术高效、快速、可重复,并且使用极少量的稀溶液,使其成为测试新型纳米材料的理想选择。使用该技术还可以实现纳米线器件的晶圆级组装,从而为测试提供大量样品并适用于大面积电子应用。