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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Embedded nanolamps in electrospun nanofibers enabling online monitoring and ratiometric measurements
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Embedded nanolamps in electrospun nanofibers enabling online monitoring and ratiometric measurements

机译:嵌入式纳米罐在Electrom X型纳米纤维中,可实现在线监测和比率测量

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摘要

A multifunctional composite nanomaterial based on nanofiber embedding upconversion nanoparticles (UCNPs) is designed to address the common limitations of bioanalysis including the colloidal stability of nanoparticles, high background signals and small sample volumes. We fabricate thin and uniform electrospun polyvinylpyrrolidone (PVP) nanofibers with a diameter of 170 +/- 80 nm, containing up to 254 +/- 9 mg mL(-1) of non-agglomerated UCNPs. On distributing these nanofibers in a microfluidic channel a 50-fold increase in luminescence over dispersed particles can be obtained. A versatile miniaturized platform is created to work with small sample volumes by transferring the upconversion nanofibers into microfluidic channels. Fast and reproducible analytical signal response to their environment is demonstrated by taking advantage of the isotope effect between H2O and D2O upon 980 nm excitation. Furthermore, relevance to analytical applications employing energy transfer was confirmed using the spectral overlap of the green UCNP emission with the absorption spectra of a dye. At minute optical path lengths (e.g. 50 mu m) the luminescence properties of the UCNPs help in avoiding the most disturbing light scattering effects of the excitation source and channel geometries. This new nanomaterial platform enables rapid, simple and reliable online monitoring in microfluidic systems, medical applications (e.g. in-tissue, in vivo) and anti-counterfeiting in contrast to solution-based UCNP applications.
机译:基于纳米纤维嵌入的纳米纤维嵌入式纳米颗粒(UCNP)的多功能复合纳米材料旨在解决生物分析的常见限制,包括纳米颗粒,高背景和小样品体积的胶体稳定性。我们制造直径为170 +/- 80nm的薄且均匀的电纺聚乙烯吡咯烷酮(PVP)纳米纤维,含有高达254 +/- 9mg ml(-1)的非聚集UCNP。在将这些纳米纤维分布在微流体通道中,可以获得分散颗粒上的发光50倍的增加。通过将上转化纳米纤维转移到微流体通道中,产生多功能的小型化平台以使用小样品体积。通过利用在980nm激发时,通过利用H2O和D2O之间的同位素效应来证明对其环境的快速和可重复的分析信号响应。此外,使用绿色UCNP发射的光谱重叠与染料的吸收光谱来确认与采用能量转移的分析应用的相关性。在微小光路长度(例如50μm)UCNPS的发光性能有助于避免激发源和通道几何形状的最令人不安的光散射效果。这种新的纳米材料平台在微流体系统中,可以快速,简单,可靠的在线监测,在微流体系统中,医学应用(例如组织,体内,体内)和抗伪造与基于溶液的UCNP应用相反。

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