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纳米颗粒的分子介导薄膜组件阵列:气敏性与颗粒间空间特性的相关性

Array of molecularly mediated thin film assemblies of nanoparticles: correlation of vapor sensing with interparticle spatial properties.

作者信息

Wang Lingyan, Shi Xiajing, Kariuki Nancy N, Schadt Mark, Wang Guannan Roger, Rendeng Qiang, Choi Jeongku, Luo Jin, Lu Susan, Zhong Chuan-Jian

机构信息

Department of Chemistry, State University of New York at Binghamton, Binghamton, New York 13902, USA.

出版信息

J Am Chem Soc. 2007 Feb 21;129(7):2161-70. doi: 10.1021/ja0673074. Epub 2007 Jan 25.

Abstract

The ability to tune interparticle spatial properties of nanoparticle assemblies is essential for the design of sensing materials toward desired sensitivity and selectivity. This paper reports findings of an investigation of molecularly mediated thin film assemblies of metal nanoparticles with controllable interparticle spatial properties as a sensing array. The interparticle spatial properties are controlled by a combination of alpha,omega-difunctional alkyl mediators (X-(CH(2))(n)-X) such as alkyl dithiols, dicarboxylate acids, and alkanethiol shells capped on nanoparticles. Alkanethiolate-capped gold and gold-silver alloy nanoparticles (2-3 nm) were studied as model building blocks toward the thin film assemblies, whereas the variation of alkyl chain length manipulates the interparticle spacing. The thin films assembled on an interdigitated microelectrode array platform are characterized for determining their responses to the sorption of volatile organic compounds (VOCs). The correlation between the response sensitivity and the interparticle spacing properties revealed not only a clear dependence of the sensitivity on alkyl chain length but also the occurrence of a dramatic change of the sensitivity in a region of chain length for the alkyl mediator comparable with that of the capping alkyl chains. This finding reflects a balance between the interparticle chain-chain cohesive interdigitation and the nanostructure-vapor interaction which determines the relative change of the electrical conductivity of the inked nanoparticle thin film in response to vapor sorption. The results, along with statistical analysis of the sensor array data in terms of sensitivity and selectivity, have provided important insights into the detailed delineation between the interparticle spacing and the nanostructured sensing properties.

摘要

调节纳米颗粒组装体的颗粒间空间性质的能力对于设计具有所需灵敏度和选择性的传感材料至关重要。本文报道了一项关于金属纳米颗粒分子介导薄膜组装体的研究结果,该组装体具有可控的颗粒间空间性质,可作为传感阵列。颗粒间空间性质由α,ω-双官能烷基介质(X-(CH₂)ₙ-X)组合控制,如烷基二硫醇、二羧酸和包覆在纳米颗粒上的烷硫醇壳层。研究了用烷硫醇包覆的金和金银合金纳米颗粒(2 - 3纳米)作为薄膜组装体的模型构建单元,而烷基链长度的变化可操纵颗粒间间距。组装在叉指微电极阵列平台上的薄膜通过表征来确定它们对挥发性有机化合物(VOCs)吸附的响应。响应灵敏度与颗粒间间距性质之间的相关性不仅揭示了灵敏度对烷基链长度的明显依赖性,还表明在烷基介质的链长度区域内,灵敏度发生了急剧变化,这一区域与封端烷基链的区域相当。这一发现反映了颗粒间链 - 链内聚叉指与纳米结构 - 蒸汽相互作用之间的平衡,这种平衡决定了着墨纳米颗粒薄膜的电导率随蒸汽吸附的相对变化。这些结果,连同对传感器阵列数据在灵敏度和选择性方面的统计分析,为详细描绘颗粒间间距与纳米结构传感性质之间的关系提供了重要见解。

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