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Alternating Current Dielectrophoresis Optimization of Pt-Decorated Graphene Oxide Nanostructures for Proficient Hydrogen Gas Sensor

机译:精制氢气传感器的Pt修饰氧化石墨烯纳米结构的交流电电泳优化

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摘要

Alternating current dielectrophoresis (DEP) is an excellent technique to assemble nanoscale materials. For efficient DEP, the optimization of the key parameters like peak-to-peak voltage, applied frequency, and processing time is required for good device. In this work, we have assembled graphene oxide (GO) nanostructures mixed with platinum (Pt) nanoparticles between the micro gap electrodes for a proficient hydrogen gas sensors. The Pt-decorated GO nanostructures were well located between a pair of prepatterned Ti/Au electrodes by controlling the DEP technique with the optimized parameters and subsequently thermally reduced before sensing. The device fabricated using the DEP technique with the optimized parameters showed relatively high sensitivity (similar to 10%) to 200 ppm hydrogen gas at room temperature. The results indicates that the device could be used in several industry applications, such as gas storage and leak detection.
机译:交流电介电泳(DEP)是一种出色的组装纳米级材料的技术。为了获得高效的DEP,优质器件需要对关键参数进行优化,例如峰峰值电压,施加频率和处理时间。在这项工作中,我们已经在微间隙电极之间组装了混合了氧化石墨烯(GO)纳米结构和铂(Pt)纳米颗粒的氢气传感器。通过用优化的参数控制DEP技术,Pt修饰的GO纳米结构很好地位于一对预先构图的Ti / Au电极之间,然后在感测之前进行热还原。使用DEP技术制造的具有优化参数的设备在室温下对200 ppm氢气显示出较高的灵敏度(大约10%)。结果表明该设备可用于多种工业应用,例如气体存储和泄漏检测。

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