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Optical properties and mechanisms in Cr~(3+),Bi~(3+)-codoped oxide-based spinel nanoparticles

机译:Cr〜(3 +),Bi〜(3 +) - 基氧化物基尖晶石纳米粒子的光学性质和机制

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At the nanoscale, the ZnGa_2O_4 spinel doped with chromium (III) is an interesting material for in vivo optical imaging due to its bright red persistent luminescence after UV and visible excitation. Moreover its persistent luminescent properties can be improved with the incorporation of bismuth (III) as a co-dopant without any structure changes. The nanoparticles are synthesized by soft chemistry using microwave heating in aqueous media. These very small sized nanophosphors (around 10 nm) present interesting long lasting persistent luminescence after annealing at 1000°C and they can be excited both under UV and under visible LED excitation. In this work we try to understand the mechanisms of the persistent luminescent properties of such nanomaterials. Thermoluminescence is performed to investigate trapping and detrapping processes as well as trap distribution. The chromium local environment is studied by Electron Paramagnetic Resonance. ~(71)Ga Nuclear Magnetic Resonance is used to get information on the gallium ions repartition (tetrahedral or octahedral site) in the structure. Comparison of optical properties versus local structure increases the understanding of the persistent luminescence mechanism and gives insights to the new modalities for their use as nanoprobes for in vivo imaging.
机译:在纳米级,掺杂有铬(III)的Znga_2O_4尖晶石是紫外线和可见激发后其明亮的红色持续发光导致体内光学成像的有趣材料。此外,由于铋(III)作为共掺杂剂,可以改善其持续发光性能,而没有任何结构变化。通过使用微波加热在水性介质中通过软化学合成纳米颗粒。这些非常小的纳米磷(大约10nm)存在于1000°C的退火后的有趣持久的持续发光,并且可以在紫外线和可见的LED激发下兴起。在这项工作中,我们试图了解这种纳米材料的持续发光特性的机制。进行热致发光以研究捕获和剥离过程以及陷阱分布。通过电子顺磁共振研究铬局部环境。 〜(71)GA核磁共振用于获取结构中镓离子屈服(四面体或八面体部位)的信息。光学特性与局部结构的比较增加了对持久发光机制的理解,并对新型方式进行了洞察,以便在体内成像中用作纳米体植物。

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