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Characterization of Nanometric Qdots by AFM and Optical Microscopy

机译:AFM和光学显微镜纳米Qdots的表征

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Quantum dots (Qdots) are fluorescent nanocrys-tals with exceptional brightness, tunability, and photostability, and huge potential in biomedical imaging from single-particle tracking, to multicolor imaging of cell structures, to real-time in vivo imaging of whole organisms. We have undertaken a combined optical and atomic force microscopy (AFM) investigation to better understand Qdots. We have developed multimodal instrumentations around AFM platforms and total internal reflection fluorescent microscopy (TIRFM) and Raman microscopy with environmental control for simultaneous characterization of the nanoscopic structural features and optical properties of individual particles and biomedical samples. Our new instruments allow fuller observation of Qdots nanocrystal core, biocompatible coating, oligomerization states, and their optical behavior, as they interact with the environment. For example, fluorescent time traces show that the fraction of "on"-time varied from a few percent to over 80% among isolated Qdots. Our high resolution AFM topological maps and super-resolution (below the diffraction limit) TIRFM localization detection reveal a varying degree of Qdot dimerization and oligomerization on glass and mica substrates. We also demonstrate direct fluorescence spectral mapping using a newly customized and integrated Raman-AFM instrument. By understanding the relationships between their topological, mechanical, electrostatic profiles and their optical properties, Qdots can be ultimately improved toward more quantitative biomedical imaging applications.
机译:量子点(Qdots)是具有出色的亮度,可随感和光稳定性的荧光纳米晶体 - 从单颗粒跟踪的生物医学成像的巨大电位,对细胞结构的多色成像,对整个生物体的体内成像的实时成像。我们已经进行了一种组合的光学和原子力显微镜(AFM)调查,以更好地了解Qdots。我们在AFM平台和全内反射荧光显微镜(TIRFM)和RAMAN显微镜下开发了多模型仪器,具有环境控制,用于同时表征各个颗粒和生物医学样品的纳米镜结构特征和光学性质。我们的新仪器使QDots纳米晶体核心,生物相容性涂层,低聚状态及其光学行为充分观察,因为它们与环境相互作用。例如,荧光时间迹线表明,“on” - - 达到的分数在孤立的Qdots之间的少量%到80%之间不同。我们的高分辨率AFM拓扑图和超分辨率(低于衍射极限)TiRFM定位检测揭示了玻璃和云母基材上的Qdot二聚化和寡聚化的变化程度。我们还使用新定制和集成的拉曼-AFM仪器展示直接荧光谱映射。通过了解其拓扑,机械,静电分布与其光学性质之间的关系,可以最终改善QDOTS朝向更加定量的生物医学成像应用。

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