Department of Chemical Engineering, University of Louisville, Louisville, KY 40208, USA.
Department of Chemistry, University of Minnesota, Minneapolis, MN 55455, USA.
Sensors (Basel). 2020 Dec 8;20(24):7024. doi: 10.3390/s20247024.
Increasing both the sensitivity and selectivity of thiol-functionalized gold nanoparticle chemiresistors remains a challenging issue in the quest to develop real-time gas sensors. The effects of thiol molecular structure on such sensor properties are not well understood. This study investigates the effects of steric as well as electronic effects in a panel of substituted thiol-urea compounds on the sensing properties of thiolate monolayer-protected gold nanoparticle chemiresistors. Three series of urea-substituted thiols with different peripheral end groups were synthesized for the study and used to prepare gold nanoparticle-based chemiresistors. The responses of the prepared sensors to trace volatile analytes were significantly affected by the urea functional motifs. The largest response for sensing acetone among the three series was observed for the thiol-urea sensor featuring a tert-butyl end group. Furthermore, the ligands fitted with N, N'-dialkyl urea moieties exhibit a much larger response to carbonyl analytes than the more acidic urea series containing N-alkoxy-N'-alkyl urea and N, N'-dialkoxy urea groups with the same peripheral end groups. The results show that the peripheral molecular structure of thiolate-coated gold nanoparticles plays a critical role in sensing target analytes.
提高巯基功能化金纳米粒子化学电阻的灵敏度和选择性仍然是开发实时气体传感器的一个具有挑战性的问题。硫醇分子结构对这种传感器特性的影响还没有得到很好的理解。本研究考察了一系列取代的硫醇-脲化合物中空间和电子效应在硫醇单层保护金纳米粒子化学电阻传感器的传感特性上的影响。为了进行这项研究,合成了具有不同外围端基的三系列脲取代硫醇,并用于制备基于金纳米粒子的化学电阻传感器。所制备的传感器对痕量挥发性分析物的响应受到脲功能基序的显著影响。在这三种系列中,对丙酮的传感响应最大的是具有叔丁基端基的硫醇-脲传感器。此外,与具有相同外围端基的含 N-烷氧基-N'-烷基脲和 N, N'-二烷氧基脲基团的酸性更强的脲系列相比,带有 N, N'-二烷基脲部分的配体对羰基分析物的响应要大得多。结果表明,金纳米粒子表面巯基覆盖层的外围分子结构在感测目标分析物方面起着关键作用。