Department of Mechanical Engineering & KI for the NanoCentury, Korea Advanced Institute of Science and Technology (KAIST), Daejeon 305-701, South Korea.
ACS Nano. 2012 Jan 24;6(1):598-608. doi: 10.1021/nn204009m. Epub 2011 Dec 20.
We developed a novel low-temperature, wet-chemical process for the facile synthesis of metal nanotube arrays through the reduction of metal precursors along sacrificial metal oxide nanowire templates and demonstrated its applications to the ultrasensitive, low-power, mechanically robust, and flexible chemical sensors. The in situ dissolution of ZnO nanowire templates, which were hydrothermally grown on electrode surfaces, during the reaction allows the direct formation of tubular Pd nanostructures on the sensor devices without the need of complex processes for device integration or template removal. Moreover, this simple synthesis was carried out at low-temperature with mild chemical conditions; therefore we could make Pd nanotube devices not only on silicon substrates but also on flexible polymer substrates. The H(2) sensing of such Pd nanotube devices was investigated under various mechanical loading and showed excellent reliability and robustness. The sensitivity of our devices was found to be at least 2 orders of magnitude higher than literature values for H(2) sensors, which can be attributed to the high surface area and the well-formed interconnect of Pd tubular nanostructures in our devices.
我们开发了一种新颖的低温湿法工艺,通过还原牺牲金属氧化物纳米线模板中的金属前体,来简便地合成金属纳米管阵列,并展示了其在超灵敏、低功耗、机械坚固和灵活的化学传感器中的应用。在反应过程中,原位溶解在电极表面上通过水热法生长的 ZnO 纳米线模板,允许在传感器器件上直接形成管状 Pd 纳米结构,而无需进行复杂的器件集成或模板去除过程。此外,这种简单的合成是在低温和温和的化学条件下进行的;因此,我们不仅可以在硅衬底上制造 Pd 纳米管器件,还可以在柔性聚合物衬底上制造 Pd 纳米管器件。我们研究了这种 Pd 纳米管器件在各种机械负载下的 H(2)传感性能,结果表明其具有优异的可靠性和坚固性。我们的器件的灵敏度比文献中报道的 H(2)传感器至少高出 2 个数量级,这归因于我们器件中 Pd 管状纳米结构的高表面积和良好的互联。