Zito Gianluigi, Rusciano Giulia, Vecchione Antonio, Pesce Giuseppe, Di Girolamo Rocco, Malafronte Anna, Sasso Antonio
University of Naples Federico II, Dept. of Physics E. Pancini, via Cintia 80126-I, Naples, Italy.
Istituto Nazionale di Ottica (INO) Consiglio Nazionale delle Ricerche, via Campi Flegrei 34- 80078 Pozzuoli, Italy.
Sci Rep. 2016 Aug 9;6:31113. doi: 10.1038/srep31113.
In this work, atomic force microscopy probes are functionalized by virtue of self-assembling monolayers of block copolymer (BCP) micelles loaded either with clusters of silver nanoparticles or bimetallic heterostructures consisting of mixed species of silver and gold nanoparticles. The resulting self-organized patterns allow coating the tips with a sort of nanometal skin made of geometrically confined nanoislands. This approach favors the reproducible engineering and tuning of the plasmonic properties of the resulting structured tip by varying the nanometal loading of the micelles. The newly conceived tips are applied for experiments of tip-enhanced Raman scattering (TERS) spectroscopy and scattering-type scanning near-field optical microscopy (s-SNOM). TERS and s-SNOM probe characterizations on several standard Raman analytes and patterned nanostructures demonstrate excellent enhancement factor with the possibility of fast scanning and spatial resolution <12 nm. In fact, each metal nanoisland consists of a multiscale heterostructure that favors large scattering and near-field amplification. Then, we verify the tips to allow challenging nongap-TER spectroscopy on thick biosamples. Our approach introduces a synergistic chemical functionalization of the tips for versatile inclusion and delivery of plasmonic nanoparticles at the tip apex, which may promote the tuning of the plasmonic properties, a large enhancement, and the possibility of adding new degrees of freedom for tip functionalization.
在这项工作中,原子力显微镜探针通过负载银纳米颗粒簇或由银和金纳米颗粒混合物种组成的双金属异质结构的嵌段共聚物(BCP)胶束自组装单层进行功能化。由此产生的自组织图案允许用一种由几何受限的纳米岛制成的纳米金属表皮覆盖探针尖端。这种方法通过改变胶束的纳米金属负载量,有利于对所得结构化尖端的等离子体特性进行可重复的工程设计和调节。新构思的探针用于尖端增强拉曼散射(TERS)光谱和散射型扫描近场光学显微镜(s-SNOM)实验。对几种标准拉曼分析物和图案化纳米结构的TERS和s-SNOM探针表征显示出优异的增强因子,具有快速扫描和空间分辨率<12nm的可能性。事实上,每个金属纳米岛都由有利于大散射和近场放大的多尺度异质结构组成。然后,我们验证这些探针能够对厚生物样品进行具有挑战性的非间隙TERS光谱分析。我们的方法引入了一种对探针的协同化学功能化,用于在探针尖端多功能地包含和递送等离子体纳米颗粒,这可能促进等离子体特性的调节、大幅增强以及为探针功能化增加新的自由度。