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基于金纳米棒的电活性逐层等离子体结构

Electroactive layer-by-layer plasmonic architectures based on Au nanorods.

作者信息

Placido Tiziana, Fanizza Elisabetta, Cosma Pinalysa, Striccoli Marinella, Curri M Lucia, Comparelli Roberto, Agostiano Angela

机构信息

CNR-IPCF Istituto per i Processi Chimici e Fisici, Sez. Bari , c/o Dip. Chimica Via Orabona 4, 70126 Bari, Italy.

出版信息

Langmuir. 2014 Mar 18;30(10):2608-18. doi: 10.1021/la402873c. Epub 2014 Mar 7.

Abstract

Nanostructured films based on Au nanorods (NRs) have been obtained by layer-by-layer (LbL) assembly driven by electrostatic interaction between metal nanoparticles and polyelectrolytes. Multilayer films have been fabricated by using LbL assembly of poly(sodium styrenesulfonate) (PSS) and positively charged Au NRs on a polyelectrolyte-modified substrate. The effect of fabrication parameters, including the nature of the substrate, the polyelectrolyte initial anchoring layer, and the number of layers has been investigated by means of UV-vis absorbance spectroscopy and atomic force microscopy (AFM). The results demonstrated the dependence of morphology and plasmonic features in the multilayered nanostructured architectures from the nature of the anchoring polyelectrolyte on the substrate, the number of layers, and the kind of NR mutual assembly. In addition, a study of the electrochemical activity at the solid/liquid interface has been carried out in order to assess charge transport through the NR multilayer by using two molecular probes in solution, namely, potassium ferricyanide, a common and well-established redox mediator with reversible behavior, and cytochrome C, a robust model redox protein. The presented systematic study of the immobilization of Au NRs opens the venue to several application areas, such as (bio)chemical sensing.

摘要

基于金纳米棒(NRs)的纳米结构薄膜是通过金属纳米颗粒与聚电解质之间的静电相互作用驱动的层层(LbL)组装获得的。多层薄膜是通过在聚电解质修饰的基底上使用聚(苯乙烯磺酸钠)(PSS)和带正电荷的金纳米棒进行LbL组装制备的。通过紫外可见吸收光谱和原子力显微镜(AFM)研究了制备参数的影响,包括基底的性质、聚电解质初始锚固层和层数。结果表明,多层纳米结构体系中的形态和等离子体特征取决于基底上锚固聚电解质的性质、层数和纳米棒相互组装的类型。此外,为了通过使用溶液中的两种分子探针,即铁氰化钾(一种常见且成熟的具有可逆行为的氧化还原介质)和细胞色素C(一种强大的模型氧化还原蛋白)来评估通过纳米棒多层膜的电荷传输,对固/液界面的电化学活性进行了研究。对金纳米棒固定化的系统研究为多个应用领域开辟了道路,如(生物)化学传感。

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