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首页> 外文期刊>Particle & Particle Systems Characterization: Measurement and Description of Particle Properties and Behavior in Powders and Other Disperse Systems >Nanospherical Surface-Supported Seeded Growth of Au Nanowires: Investigation on a New Growth Mechanism and High-Performance Hydrogen Peroxide Sensors
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Nanospherical Surface-Supported Seeded Growth of Au Nanowires: Investigation on a New Growth Mechanism and High-Performance Hydrogen Peroxide Sensors

机译:金纳米线的纳米球形表面支撑种子生长:新型生长机理和高性能过氧化氢传感器的研究

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摘要

In this paper, a novel strategy with a new growth mechanism for fast and large-scale growth of Au long nanowires on high-curvature SiO2 nanospherical surfaces has been developed. The synthesis includes three steps, i.e., amino modification of SiO2 nanospheres, Au seed loading on aminated SiO2 nanospheres and subsequently, Au seed-mediated nanowire growth on SiO2 nanospheres. The prepared Au nanowires (Au NWs) (exhibit long length, high aspect ratio, and good flexibility, and can naturally form the dense nanowire film, which is promising as a stable conductive electrode. In addition, the effect of synthetic conditions such as reactant feeding order, Au seeds and SiO2@Au seeds on the morphology of Au nanostructures (nanowires, nanoteeth, and nanoflowers) has been investigated. It is found that Au seeds and high-curvature SiO2 nanospherical surfaces are necessary conditions for the successful preparation of Au NWs and nanowire films. The different growth mechanisms for Au NWs and nanoteeth have been proposed and discussed. Moreover, the novel nonenzymatic H2O2 sensor based on Au NWs exhibits much enhanced performance such as higher sensitivity, stability, and selectivity, wider linear range and lower detection limit, compared with that of Au nanoparticles-based H2O2 sensor.
机译:本文提出了一种具有新生长机制的新策略,用于在高曲率SiO2纳米球形表面上快速且大规模地生长金长纳米线。合成包括三个步骤,即,SiO 2纳米球的氨基修饰,在胺化的SiO 2纳米球上的金种子负载以及随后在SiO 2纳米球上的金种子介导的纳米线生长。制备的金纳米线(Au NWs)具有长,高的长径比和良好的柔韧性,可以自然形成致密的纳米线膜,有望作为稳定的导电电极,此外,还可以合成反应物等条件进料顺序,金纳米结构(纳米线,纳米齿和纳米花)的形态研究了金种子和SiO2 @ Au种子,发现金种子和高曲率的SiO2纳米球形表面是成功制备Au的必要条件纳米线和纳米线薄膜的提出和讨论了金纳米线和纳米牙的不同生长机理,此外,基于金纳米线的新型非酶H2O2传感器具有更高的性能,如更高的灵敏度,稳定性和选择性,更宽的线性范围和更低的检测极限,与基于金纳米颗粒的H2O2传感器相比。

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