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首页> 外文期刊>Nanotechnology >Towards high-performance, low-cost quartz sensors with high-density, well-separated, vertically aligned ZnO nanowires by low-temperature, seed-less, single-step, double-sided growth
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Towards high-performance, low-cost quartz sensors with high-density, well-separated, vertically aligned ZnO nanowires by low-temperature, seed-less, single-step, double-sided growth

机译:通过低温,无籽,单步,双面生长,向具有高密度,分离良好,垂直排列的ZnO纳米线的高性能,低成本石英传感器发展

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Resonant sensors with nanostructured surfaces have long been considered as an emergent platform for high-sensitivity transduction because of the potentially very large sensing areas. Nevertheless, until now only complex, time-consuming, expensive and sub-optimal fabrication procedures have been described; in fact, especially with reference to in-liquid applications, very few devices have been reported. Here, we first demonstrate that, by immersing standard, ultra-low-cost quartz resonators with un-polished silver electrodes in a conventional zinc nitrate/HMTA equimolar nutrient solution, the gentle contamination from the metallic package allows direct growth on the electrodes of arrays of high-density (up to 10 μm~(-2)) and well-separated (no fusion at the roots) ZnO nanowires without any seed layer or thermal annealing. The combination of high-density and good separation is ideal for increasing the sensing area; moreover, this uniquely simple, single-step process is suitable for conventional, ultra-low-cost and high-frequency quartzes, and results in devices that are already packaged and ready to use. As an additional advantage, the process parameters can be effectively optimized by measuring the quartz admittance before and after growth. As a preliminary test, we show that the sensitivity to the liquid properties of high-frequency (i.e. high sensitivity) quartzes can be further increased by nearly one order of magnitude and thus show the highest ever reported frequency shifts of an admittance resonance in response to immersion in both ethanol and water.
机译:长期以来,具有纳米结构表面的共振传感器一直被认为是高灵敏度传导的新兴平台,因为其潜在的传感区域非常大。然而,到目前为止,仅描述了复杂,费时,昂贵和次优的制造过程;然而,在此不再赘述。实际上,特别是在液体应用方面,报道的设备很少。在这里,我们首先证明,通过将带有未抛光银电极的标准超低成本石英谐振器浸入传统的硝酸锌/ HMTA等摩尔营养液中,金属包装中的轻度污染允许直接在阵列电极上生长高密度(高达10μm〜(-2))且分离良好(根部无融合)的ZnO纳米线,无需任何种子层或热退火。高密度和良好的分离度相结合是增加感应面积的理想选择;此外,这种独特的简单,单一步骤的方法适用于常规的超低成本和高频石英,从而使设备已经包装好并可以使用。另外一个优点是,可以通过测量生长前后的石英导纳来有效地优化工艺参数。作为一项初步测试,我们表明,对高频(即高灵敏度)石英的液体性质的灵敏度可以进一步提高近一个数量级,因此显示出有史以来报道的最高的导纳共振频率偏移。浸入乙醇和水中。

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