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Polydopamine-Enabled Approach toward Tailored Plasmonic Nanogapped Nanoparticles: From Nanogap Engineering to Multifunctionality

机译:聚多巴胺使能的方法用于定制的等离子等离子纳米间隙纳米颗粒:从纳米间隙工程到多功能

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摘要

We present a platform strategy that offers diverse flexibility in tailoring the structure and properties of core–shell plasmonic nanoparticles with built-in nanogaps. Our results have demonstrated that polydopamine serves multiple concerted functions as a nanoscale spacer to afford controllable nanogap sizes, a redox-active coating to promote metal shell growth, and a reactive scaffold to exclusively lock molecular probes inside the nanogap for surface-enhanced Raman scattering (SERS). More interestingly, the universal adhesion of polydopamine on diverse colloidal substrates allows for customized synthesis of multishell plasmonic nanogapped nanoparticles (NNPs) and multifunctional hybrid NNPs containing different cores (i.e., magnetic nanoparticles), which are not readily accessible by conventional methods. Internally coupled plasmonic NNPs with broadly tunable spectroscopic properties, highly active SERS, and multifunctionality hold great promise for emerging fields, such as sensing, optoelectronics, and theranostics, as demonstrated by the ultrasensitive SERS detection and efficient photothermal killing of food-borne pathogens here.
机译:我们提供了一种平台策略,该平台策略可为具有内置纳米间隙的核-壳等离激元纳米粒子的结构和性能提供多样化的灵活性。我们的结果表明,聚多巴胺具有多种协同作用,可作为纳米级间隔基提供可控制的纳米间隙尺寸,氧化还原活性涂层以促进金属壳生长,以及反应性支架将分子探针专门锁定在纳米间隙中以进行表面增强拉曼散射( SERS)。更有趣的是,聚多巴胺在各种胶体基质上的普遍粘附性允许定制合成包含不同核的多壳等离激元纳米间隙纳米颗粒(NNP)和多功能杂化NNP(即磁性纳米颗粒),而这是常规方法不易获得的。内部耦合的等离子NNP具有广泛可调的光谱特性,高活性SERS和多功能性,在新兴领域,如传感,光电子学和诊断学领域,都具有广阔的前景,超灵敏SERS检测和对食源性病原体的有效光热杀伤证明了这一点。

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