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Core-shell nanostructured nanoparticle films as chemically sensitive interfaces

机译:核壳纳米结构纳米颗粒薄膜作为化学敏感界面

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This paper reports the results of an investigation of vapor molecule sorption at different types of nanostructured nanoparticle films. Core-shell nanoparticles of two different core sizes, Au2-nm and Au5-nm, and molecular linkers of two different binding properties, 1,9-nonanedithiol and 11-mercaptoundecanoic acid, are utilized as building blocks for constructing chemically sensitive interfaces. The work couples measurements of two different transducers, interdigitated microelectrodes and quartz crystal microbalance, to determine the correlation of the electronic resistance change and the mass loading with vapor sorption. The responses to vapor sorption at these nanostructured interfaces are demonstrated to be dependent on the core size of nanoparticles and the chemical nature of linking molecules. The difference of molecular interactions of vapor molecules at the nanostructured interface is shown to have a significant impact on the response profile and sensitivity. For the tested vapor molecules, while there are small differences for the sorption of nonpolar and hydrophobic vapor molecules, there are striking differences for the sorption of polar and hydrophilic vapor molecules at these nanostructured interfacial materials. The implication of the findings to the delineation of design parameters for constructing core-shell nanoparticle assemblies as chemically sensitive interfacial materials is also discussed.
机译:本文报道了在不同类型的纳米结构纳米颗粒薄膜上气相分子吸附研究的结果。具有两种不同核尺寸的Au2-nm和Au5-nm核-壳纳米颗粒,以及具有两种不同结合特性的1,9-壬二硫醇和11-巯基十一烷酸的分子接头,被用作构建化学敏感界面的构件。这项工作将两个不同的传感器(指状微电极和石英晶体微量天平)的测量耦合在一起,以确定电子电阻变化与质量吸附与蒸汽吸附之间的关系。在这些纳米结构的界面上,对蒸气吸附的响应被证明取决于纳米颗粒的核心尺寸和连接分子的化学性质。蒸汽分子在纳米结构界面处的分子相互作用的差异显示出对响应曲线和灵敏度有重大影响。对于测试的蒸气分子,尽管非极性和疏水性蒸气分子的吸附差异很小,但这些纳米结构界面材料对极性和亲水性蒸气分子的吸附差异却很大。还讨论了发现对确定构造壳-壳纳米颗粒组件作为化学敏感界面材料的设计参数的影响。

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