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首页> 外文期刊>Chemical science >Tuning the interparticle distance in nanoparticle assemblies in suspension via DNA-triplex formation: correlation between plasmonic and surface-enhanced Raman scattering responses
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Tuning the interparticle distance in nanoparticle assemblies in suspension via DNA-triplex formation: correlation between plasmonic and surface-enhanced Raman scattering responses

机译:通过DNA三重体形成调节悬浮液中纳米颗粒组件中的颗粒间距离:等离激元和表面增强拉曼散射响应之间的相关性

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The understanding of the relationship between plasmonic and surface-enhanced Raman scattering (SERS) properties of dynamic nanoparticle assemblies is of paramount importance for the optimal design of related plasmonic nanostructures, especially for SERS applications. In this regard, recent studies have provided new important insights for well-ordered nanoparticle assemblies but little is known about the relationship between the physical and optical properties for large ensembles of randomly aggregated metal nanoparticles in suspension, which still represents the simplest and most common route to obtain highly effective SERS substrates. Here we exploit the triplex-assembling ability of DNA-conjugated silver nanoparticles to engineer interparticle junctions with controlled interparticle distance and tune the aggregation rate to allow accurate investigation into the correlation between the averaged time-dependent plasmonic and SERS responses within a complex ensemble of nanoparticles in suspension. Solution-based single particle tracking was used to characterize the heterogeneity of the nanoparticle assembly with statistical reliability, acting as a key tool to unravel the connection between these two bulk responses. To achieve this, we report the first example of the parallel hybridization of dye-labeled locked nucleic acid (LNA) silver nanoparticle probes to double stranded DNA bridges of different lengths to form a triplex assembly, that provides SERS enhancements directly related to the interparticle distance imposed by the high structural rigidity of the double stranded linker. This is also a crucial step towards utilising SERS for the study of DNA in its natural double stranded state and, ultimately, to obtain nanoscale distance-dependent information in challenging biological environments using specially designed nanoparticles.
机译:了解动态纳米粒子组件的等离激元和表面增强拉曼散射(SERS)特性之间的关系对于相关等离激元纳米结构的最佳设计,尤其是SERS应用而言,至关重要。在这方面,最近的研究为有序的纳米粒子组装提供了新的重要见解,但对于悬浮状态的大量随机聚集的金属纳米粒子的物理和光学性质之间的关系鲜为人知,这仍然代表了最简单,最常见的途径获得高效的SERS底物。在这里,我们利用DNA共轭银纳米粒子的三重组装能力来设计具有受控粒子间距离的粒子间连接,并调整聚集速率,从而可以精确地研究复杂纳米粒子集合中平均时间相关的等离激元和SERS响应之间的相关性。处于暂停状态。基于解决方案的单粒子跟踪用于统计可靠性地表征纳米粒子组件的异质性,是解开这两个本体响应之间联系的关键工具。为了实现这一目标,我们报告了染料标记的锁定核酸(LNA)银纳米颗粒探针与不同长度的双链DNA桥平行杂交的第一个例子,以形成三链体组装,从而提供了与颗粒间距离直接相关的SERS增强双链接头具有很高的结构刚性。这也是利用SERS研究天然双链状态DNA的关键步骤,并最终使用特殊设计的纳米颗粒在具有挑战性的生物环境中获得纳米级的距离相关信息。

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