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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Semiconductor-like Sensitivity in Metallic Ultrathin Gold Nanowire-Based Sensors
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Semiconductor-like Sensitivity in Metallic Ultrathin Gold Nanowire-Based Sensors

机译:基于金属超薄金纳米线的传感器中类似半导体的灵敏度

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Due to the ease of modification of electronic structure upon analyte adsorption, semiconductors have been the preferred materials as chemical sensors. At reduced dimension, however, the sensitivity of semiconductor-based sensors deteriorates significantly due to passivation, and often by increased band gap caused by quantum confinement. Using first-principles density functional theory combined with Boltzmann transport calculations, we demonstrate semiconductor-like sensitivity toward chemical species in ultrathin gold nanowires (AuNWs). The sensing mechanism is governed by the modification of the electronic structure of the AuNW as well as scattering of the charge carriers by analyte adsorption. Most importantly, the sensitivity exhibits a linear relationship with the electron affinities of the respective analytes. Based on this relationship, we propose an empirical parameter, which can predict an analyte-specific sensitivity of a AuNW, rendering them as effective sensors for a wide range of chemical analytes.
机译:由于在吸附分析物时容易改变电子结构,半导体已成为化学传感器的首选材料。然而,在减小尺寸的情况下,基于半导体的传感器的灵敏度由于钝化而显着降低,并且通常是由于量子限制导致的带隙增大。使用第一原理密度泛函理论与玻尔兹曼输运计算相结合,我们证明了对超薄金纳米线(AuNWs)中化学物种的半导体般的敏感性。感测机制受AuNW电子结构的修改以及分析物吸附导致载流子散射的支配。最重要的是,灵敏度与各个分析物的电子亲和力呈线性关系。基于此关系,我们提出了一个经验参数,该参数可以预测AuNW的特定于分析物的灵敏度,从而使其成为各种化学分析物的有效传感器。

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