双二硫代氨基甲酸酯和二胺相互连接的金纳米粒子网络:化学组成和化学电阻性能的表征

T. Tauchnitz, Y. Daskal, R. Dittrich, Michael Günthel, F. Mertens, Y. Joseph
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摘要

利用微流控电池,通过逐层自组装,制备了金(Au)纳米颗粒与不同类型的有机分子相互连接的化学复合材料。在组装过程中,使用了平均尺寸为3.7 nm的十二胺稳定金纳米粒子,以及不同烷基链长(C6和C8)的烷基二硫醇、烷基二胺和烷基双硫代氨基甲酸酯。利用x射线光电子能谱对制备的纳米颗粒复合材料进行了膜层组成和相互连接程度的研究。为了测量电学和气敏性能,使用了装有金交叉电极的硅模具。在室温下,所有薄膜均表现出线性电流-电压特性,电导率在10-2和10-4 Ω−1 cm−1范围内。在0%的相对湿度下,用甲苯、1-丙醇、4-甲基-2-戊酮和浓度在100 - 5000 ppm之间的水的蒸气对薄膜的灵敏度进行了研究。所有复合薄膜对分析物的电阻都会增加。传感器显示高信噪比,表明所有测试蒸汽的检测极限低于100 ppm。响应动力学表现出高可逆性和快速的感知机制,特别是对二硫醇和二胺的响应和恢复时间为2 ~ 10 s。二硫醇传感器对甲苯和4-甲基-2-戊酮具有较高的选择性,而双二硫代氨基甲酸酯复合材料适用于水和1-丙醇的检测。所有材料在(至少)几个月内都是稳定的。
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Bisdithiocarbamate and Diamine Interlinked Gold Nanoparticle Networks: Characterization of Chemical Composition and Chemiresistive Properties
Chemiresistive composites of gold (Au) nanoparticles interlinked with different types of organic molecules were prepared automatically by layer-by-layer self-assembly using a microfluidic cell. For the assembly process, dodecylamine-stabilized Au nanoparticles with an average size of 3.7 nm as well as alkyl dithiols, alkyl diamines, and alkyl bisdithiocarbamates with different alkyl chain length (C6 and C8) were used. X-ray photoelectron spectroscopy was applied on prepared nanoparticle composites to study the film composition and the degree of interlinkage. For the measurement of electrical and vapor-sensing properties, silicon dies equipped with gold interdigitated electrodes were used. All films show linear current-voltage characteristics and conductivities in the range of 10–2 and 10–4 Ω−1 cm−1 at room temperature. The sensitivity of the film is investigated by dosing them with vapors of toluene, 1-propanol, 4-methyl-2-pentanone, and water in the concentration range from 100 to 5,000 ppm at 0% relative humidity. All composite films respond with an increase in their electrical resistance to the analytes. The sensors show a high signal-to-noise ratio which indicates a detection limit below 100 ppm for all test vapors. The response dynamics demonstrate a high reversibility and a fast sensing mechanism especially for dithiols and diamines with response and recovery times from 2 to 10 s. The dithiol sensors exhibit a high selectivity to toluene and 4-methyl-2-pentanone whereas the bisdithiocarbamate composites are suitable for the detection of water and 1-propanol. All materials are stable for (at least) several months.
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