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首页> 外文期刊>Colloids and Surfaces, A. Physicochemical and Engineering Aspects >Encapsulation of TOPO stabilized NaYF4: Er3+, Yb3+ nanoparticles in biocompatible nanocarriers: Synthesis, optical properties and colloidal stabilityUrszula
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Encapsulation of TOPO stabilized NaYF4: Er3+, Yb3+ nanoparticles in biocompatible nanocarriers: Synthesis, optical properties and colloidal stabilityUrszula

机译:皮上稳定的NayF4:ER3 +,生物相容性纳米载体中的YB3 +纳米粒子的封装:合成,光学性质和胶体稳定性

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摘要

The emulsification process leading to up-converting NaYF4: Er3+, Yb3+ NPs encapsulation, was performed using a modified water/oil/water double emulsion evaporation method, where poly(lactic-co-glycolic acid) was used as biocompatible polymer. Span 80 and Cremophor A25 were applied as non-ionic surfactants factants and dichloromethane as oily phase. The use of trioctylphosphine oxide ligands for the synthesis of up-converting NaYF4: Er3+, Yb3+ NPs allowed to obtain spherical particles with sizes below 10 nm, what further facilitated the efficient encapsulation process. Those newly designed nanosystems were subjected to analysis of their morphology, colloidal stability and optical properties by: dynamic light scattering, zeta potential, atomic force microscopy, transmission electron microscopy and measuring the up-conversion emission spectra of free and loaded NaYF4: Er3+, Yb3+ NPs. The encapsulated NaYF4: Er3+, Yb3+ NPs showed increased colloidal stability for a long period of 60 days of storage in different conditions. Simultaneously, the encapsulation process did not significantly influenced their optical properties and strong visible emission could be observed upon nearinfrared excitation. (C) 2017 Elsevier B.V. All rights reserved.
机译:使用改性的水/油/水双乳液蒸发方法进行导致升高NayF4:ER3 +,YB3 + NPS封装的乳化过程,其中聚(乳酸二乙醇酸)用作生物相容性聚合物。跨度80和Cremophor A25用作非离子表面活性剂因子和二氯甲烷作为油相。使用三辛膦酰氧化物配体用于上转换NayF4:ER3 +,YB3 + NPS的合成,使得尺寸低于10nm的球形颗粒,进一步促进了有效的封装过程。这些新设计的纳米系统通过:通过:动态光散射,Zeta电位,原子力显微镜,透射电子显微镜和测量自由和装载的NayF4:ER3 +,YB3 +的上转化发射光谱的动态光散射和光学性能分析nps。包封的NayF4:ER3 +,YB3 + NPS在不同条件下储存的长期持续增加了胶体稳定性增加。同时,封装过程没有显着影响它们的光学性质,并且在接近过的激发时可以观察到强的可见光。 (c)2017 Elsevier B.v.保留所有权利。

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