首页> 外文会议>Conference on Imaging, Manipulation, and Analysis of Biomolecules, Cell, and Tissues; 20080121-23; San Jose,CA(US) >Anorganic Fluorescence Reference Materials for Decay Time of Fluorescence Emission
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Anorganic Fluorescence Reference Materials for Decay Time of Fluorescence Emission

机译:无机荧光参比材料,用于荧光发射衰减时间

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Fluorescence techniques are known for their high sensitivity and are widely used as analytical tools, detection methods and imaging applications for product and process control, material sciences, environmental and bio-technical analysis, molecular genetics, cell biology, medical diagnostics, and drug screening. According to DIN/ISO 17025 certified standards are used for steady state fluorescence diagnostics, a method having the drawback of giving relative values for fluorescence intensities only. Therefore reference materials for a quantitative characterization have to be related directly to the materials under investigation. In order to evaluate these figures it is necessary to calculate absolute numbers such as absorption/excitation cross sections and quantum yield. This has been done for different types of dopands in different materials such as glass, glass ceramics, crystals or nano crystalline material embedded in polymer matrices. Samples doped with several fluophores of different emission wavelengths and decay times are required for fluorescent multiplexing applications. Decay times shorter than 100 ns are of special interest. In addition, a proper knowledge is necessary of quantum efficiency in highly scattering media. Recently, quantum efficiency in YAG:Ce glass ceramics has been successfully investigated. Glass and glass ceramics doped with threefold charged rare earth elements are available. However, these samples have the disadvantage of emission decay times much longer than 1 microsecond, due to the excitation and emission of their optical forbidden electronic transitions. Therefore first attempts have been made to produce decay-time standards based on organic and inorganic fluophores. Stable LUMOGEN RED pigments and YAG:Ce phosphors are diluted simultaneously in silicone matrices using a wide range of concentrations between 0.0001 and 2 wt%. Organic LUMOGEN RED has decay times in the lower nanosecond range with a slight dependency on concentration and temperature. In addition, the well-known decay properties of inorganic YAG:Ce are observed also embedded in silicone matrix. Luminescent silicone layers are obtained with thicknesses between 150 and 300 μm and no change of decay time, which has been determined to be between 60 and 62 ns. Finally, first results are shown for fluorescent CaF2:Pb glass ceramics embedded in a silicate glass matrix. Wavelength accuracy and lifetime are characterized for different environmental conditions such as temperature treatment and UV irradiation. Moreover, intensity patterns, e.g. line profiles and results, are discussed on homogeneity and photo and thermal stability, respectively. Fluorescence (steady state, decay time) and absorption (remission, absorption) spectroscopy are employed as diagnostic methods to get a microscopic view of the relevant physical processes. The work is funded by BMBF under project number 13N8849.
机译:荧光技术以其高灵敏度而著称,并广泛用作产品和过程控制,材料科学,环境和生物技术分析,分子遗传学,细胞生物学,医学诊断和药物筛选的分析工具,检测方法和成像应用。根据DIN / ISO 17025认证的标准用于稳态荧光诊断,该方法具有仅给出荧光强度相对值的缺点。因此,用于定量表征的参考材料必须与所研究的材料直接相关。为了评估这些数字,有必要计算绝对数,例如吸收/激发截面和量子产率。对于嵌入在聚合物基质中的不同材料(例如玻璃,玻璃陶瓷,晶体或纳米晶体材料)中的不同类型的掺杂剂,已经完成了此操作。荧光多路复用应用需要掺有几种不同发射波长和衰减时间的荧光团的样品。小于100 ns的衰减时间特别令人关注。另外,对于高散射介质中的量子效率,必须有适当的了解。近来,已经成功地研究了YAG:Ce玻璃陶瓷中的量子效率。可以提供掺有三倍带电稀土元素的玻璃和玻璃陶瓷。但是,由于这些样品的光学禁忌电子跃迁的激发和发射,它们具有发射衰减时间远大于1微秒的缺点。因此,已经进行了首次尝试以有机和无机荧光团为基础制备衰减时间标准。稳定的LUMOGEN RED颜料和YAG:Ce荧光粉同时在有机硅基质中稀释,浓度范围为0.0001至2 wt%。有机LUMOGEN RED的衰减时间在较低的纳秒范围内,与浓度和温度略有相关。另外,还观察到无机YAG:Ce的众所周知的衰减特性也嵌入在有机硅基质中。获得的发光硅树脂层的厚度在150到300μm之间,并且衰减时间没有变化,衰减时间已确定在60到62 ns之间。最后,显示了嵌入在硅酸盐玻璃基体中的荧光CaF2:Pb玻璃陶瓷的初步结果。波长精度和寿命是针对不同环境条件(例如温度处理和紫外线照射)表征的。此外,强度模式例如线轮廓和结果分别讨论了均匀性,光稳定性和热稳定性。荧光(稳态,衰减时间)和吸收(吸收,吸收)光谱法被用作诊断方法,以获取相关物理过程的微观视图。这项工作由BMBF在项目号13N8849下资助。

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