Fu Qiang, Liu Jie
J Phys Chem B. 2005 Jul 21;109(28):13406-8. doi: 10.1021/jp0525686.
A method to fabricate integrated single-walled carbon nanotube/microfluidic devices was developed. This simple process could be used to directly prepare nanotube thin film transistors within the microfluidic channel and to register SWNT devices with the microfludic channel without the need of an additional alignment step. The microfluidic device was designed to have several inlets that deliver multiple liquid flows to a single main channel. The location and width of each flow in the main channel could be controlled by the relative flow rates. This capability enabled us to study the effect of the location and the coverage area of the liquid flow that contained charged molecules on the conduction of the nanotube devices, providing important information on the sensing mechanism of carbon nanotube sensors. The results showed that in a sensor based on a nanotube thin film field effect transistor, the sensing signal came from target molecules absorbed on or around the nanotubes. The effect from adsorption on metal electrodes was weak.
开发了一种制造集成单壁碳纳米管/微流体装置的方法。这个简单的过程可用于在微流体通道内直接制备纳米管薄膜晶体管,并且无需额外的对准步骤即可将单壁碳纳米管装置与微流体通道对齐。该微流体装置设计有多个入口,可将多种液体流输送到单个主通道。主通道中每种流体的位置和宽度可通过相对流速来控制。这种能力使我们能够研究含有带电分子的液体流的位置和覆盖面积对纳米管装置传导的影响,从而提供有关碳纳米管传感器传感机制的重要信息。结果表明,在基于纳米管薄膜场效应晶体管的传感器中,传感信号来自吸附在纳米管上或其周围的目标分子。金属电极上的吸附作用较弱。