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Bimodal Fluorescent and Magnetic Nanoparticles Based on Carbon Quantum Dots and Metal-Carbon Nanocomposites for Bio-applications

机译:基于碳量子点和金属 - 碳纳米复合材料的双峰荧光和磁性纳米颗粒进行生物应用

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The simultaneous combination of optical and magnetic properties of nanoparticles would greatly benefit in vivo disease diagnosis as well as in situ monitoring of cell in cell culture. The most promising application of magnetic particles in biomedicine is MRI contrast enhancement and magnetic hyperthermia. Another important thing is the determination of exact localization of nanoparticles in the cell culture that can be defined by e.g. optical way. In our investigation we used the iron nanoparticles encapsulated in carbon as a magnetic component and carbon quantum dots as an optical labels to provide the photostability and fluorescence in a wide range of wavelengths. In order to avoid the fluorescence quenching in bimodal particles the optical and magnetic components should be separated by insulator layer. To create the optimal bimodal nanoparticles for this purpose the non-typical configuration of nanocomposites was realized, namely, a fluorescent core was separated from the coated magnetic particles by silicon dioxide matrix. Finally, it was shown that these bimodal nanocomposites demonstrate the high magnetic properties, good visualized ability and low toxicity for living cells as well.
机译:纳米颗粒的光学和磁性性质的同时组合将在体内疾病诊断中有利,以及对细胞培养中细胞的原位监测。生物医学中最有希望的磁性颗粒施用是MRI对比增强和磁热疗。另一个重要的是确定可以由例如可以定义的细胞培养物中纳米颗粒的精确定位。光学方式。在我们的研究中,我们使用碳中封装的铁纳米粒子作为磁性分量和碳量子点作为光学标记,以在宽范围的波长范围内提供光稳定性和荧光。为了避免双峰颗粒中的荧光猝灭,光学和磁性部件应通过绝缘体层分离。为了为此,实现最佳双峰纳米颗粒,实现了纳米复合材料的非典型构型,即通过二氧化硅基质与涂覆的磁性颗粒分离出荧光芯。最后,表明这些双峰纳米复合材料表明了高磁性,对活细胞的高磁性,可视化能力和低毒性。

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