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Synthesis and Functionalization of Monodisperse Near-ultraviolet and Visible Excitable Multifunctional Eu3+, Bi3+:REVO4 Nanophosphors for Bioimaging and Biosensing Applications

机译:单分散近紫外和可见可激发的多功能Eu3 +,Bi3 +:REVO4纳米磷光体的合成和功能化,用于生物成像和生物传感应用

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摘要

Near-ultraviolet and visible excitable Eu- and Bi-doped NPs based on rare earth vanadates (REVO4, RE = Y, Gd) have been synthesized by a facile route from appropriate RE precursors, europium and bismuth nitrate, and sodium orthovanadate, by homogeneous precipitation in an ethylene glycol/water mixture at 120 °C. The NPs can be functionalized either by a one-pot synthesis with polyacrylic acid (PAA) or by a Layer-by-Layer approach with poly(allylamine hydrochloride) (PAH) and PAA. In the first case, the particle size can also be tuned by adjusting the amount of PAA. The Eu- Bi-doped REVO4 based nanophosphors show the typical red luminescence of Eu(III), which can be excited through an energy transfer process from the vanadate anions, resulting in a much higher luminescence intensity in comparison to the direct excitation of the europium cations. The incorporation of Bi into the REVO4 structure shifts the original absorption band of the vanadate anions towards longer wavelengths, giving rise to nanophosphors with an excitation maximum at 342 nm, which can also be excited in the visible range. The suitability of such nanophosphors for bioimaging and biosensing applications, as well as their colloidal stability in different buffer media of biological interest, their cytotoxicity, their degradability at low pH, and their uptake by HeLa cells have been evaluated. Their suitability for bioimaging and biosensing applications is also demonstrated.
机译:基于稀土钒酸盐(REVO4,RE = Y,Gd)的近紫外和可见的可激发的Eu和Bi掺杂的NPs通过适当的RE前体,euro和硝酸铋以及原钒酸钠通过均相的简便方法合成在120°C的乙二醇/水混合物中沉淀。 NP可以通过聚丙烯酸(PAA)的一锅法合成或通过聚(烯丙胺盐酸盐)(PAH)和PAA的分层方法进行功能化。在第一种情况下,还可以通过调节PAA的量来调节粒径。 Eu-Bi掺杂的基于REVO4的纳米磷光体显示出Eu(III)的典型红色发光,可以通过能量转移过程从钒酸盐阴离子中激发出Eu(III),与直接激发of相比,其发光强度要高得多。阳离子。将Bi掺入REVO4结构会将钒酸盐阴离子的原始吸收带移向更长的波长,从而产生在342 nm处具有最大激发光的纳米磷光体,该磷光体也可以在可见光范围内被激发。已经评估了此类纳米磷光体在生物成像和生物传感应用中的适用性,以及它们在生物学感兴趣的不同缓冲介质中的胶体稳定性,其细胞毒性,在低pH下的可降解性以及它们被HeLa细胞摄取的能力。还证明了它们适用于生物成像和生物传感应用。

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