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Fabrication of heterogeneous nanomaterial array by programmable heating and chemical supply within microfluidic platform towards multiplexed gas sensing application

机译:通过在微流体平台内进行可编程加热和化学供应以制备多相纳米材料阵列以实现多路气体传感应用

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摘要

A facile top-down/bottom-up hybrid nanofabrication process based on programmable temperature control and parallel chemical supply within microfluidic platform has been developed for the all liquid-phase synthesis of heterogeneous nanomaterial arrays. The synthesized materials and locations can be controlled by local heating with integrated microheaters and guided liquid chemical flow within microfluidic platform. As proofs-of-concept, we have demonstrated the synthesis of two types of nanomaterial arrays: (i) parallel array of TiO2 nanotubes, CuO nanospikes and ZnO nanowires, and (ii) parallel array of ZnO nanowire/CuO nanospike hybrid nanostructures, CuO nanospikes and ZnO nanowires. The laminar flow with negligible ionic diffusion between different precursor solutions as well as localized heating was verified by numerical calculation and experimental result of nanomaterial array synthesis. The devices made of heterogeneous nanomaterial array were utilized as a multiplexed sensor for toxic gases such as NO2 and CO. This method would be very useful for the facile fabrication of functional nanodevices based on highly integrated arrays of heterogeneous nanomaterials.
机译:已经开发了一种基于可编程温度控制和微流体平台内并行化学物质供应的自上而下/自下而上的混合纳米制造工艺,用于异质纳米材料阵列的全液相合成。合成的材料和位置可以通过集成微型加热器的局部加热和在微流体平台内引导液体化学物质的流动来控制。作为概念验证,我们已证明了两种类型的纳米材料阵列的合成:(i)TiO2纳米管,CuO纳米钉和ZnO纳米线的平行阵列,以及(ii)ZnO纳米线/ CuO纳米钉的杂化纳米结构CuO的平行阵列纳米钉和ZnO纳米线。通过数值计算和纳米材料阵列合成的实验结果,验证了不同前体溶液之间离子扩散可忽略的层流以及局部加热。由异质纳米材料阵列制成的器件被用作有毒气体(如NO2和CO)的多路传感器。这种方法对于基于异质纳米材料高度集成的阵列的功能纳米器件的简便制造将非常有用。

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