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Distance-Dependent Plasmon-Enhanced Fluorescence of Upconversion Nanoparticles using Polyelectrolyte Multilayers as Tunable Spacers

机译:使用聚电解质多层作为可调节间隔物的上转换纳米粒子的距离依赖性等离子体增强荧光

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摘要

Lanthanide-doped upconversion nanoparticles (UCNPs) have attracted widespread interests in bioapplications due to their unique optical properties by converting near infrared excitation to visible emission. However, relatively low quantum yield prompts a need for developing methods for fluorescence enhancement. Plasmon nanostructures are known to efficiently enhance fluorescence of the surrounding fluorophores by acting as nanoantennae to focus electric field into nano-volume. Here, we reported a novel plasmon-enhanced fluorescence system in which the distance between UCNPs and nanoantennae (gold nanorods, AuNRs) was precisely tuned by using layer-by-layer assembled polyelectrolyte multilayers as spacers. By modulating the aspect ratio of AuNRs, localized surface plasmon resonance (LSPR) wavelength at 980 nm was obtained, matching the native excitation of UCNPs resulting in maximum enhancement of 22.6-fold with 8 nm spacer thickness. These findings provide a unique platform for exploring hybrid nanostructures composed of UCNPs and plasmonic nanostructures in bioimaging applications.
机译:镧系元素掺杂的上转换纳米粒子(UCNPs)通过将近红外激发转换为可见光发射,具有独特的光学性能,因此在生物应用中引起了广泛的关注。然而,相对较低的量子产率提示需要开发用于荧光增强的方法。已知等离子纳米结构通过充当纳米天线来将电场聚焦到纳米体积中,从而有效地增强了周围荧光团的荧光。在这里,我们报道了一种新型的等离子体增强荧光系统,其中通过使用逐层组装的聚电解质多层膜作为间隔物,精确地调节了UCNPs和纳米天线(金纳米棒,AuNRs)之间的距离。通过调节AuNRs的长宽比,获得了980 nm的局部表面等离子体共振(LSPR)波长,与UCNPs的自然激发相匹配,从而使间隔层厚度为8 nm时最大增强了22.6倍。这些发现为在生物成像应用中探索由UCNP和等离激元纳米结构组成的杂化纳米结构提供了独特的平台。

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