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Application of spectroscopy and super-resolution microscopy: Excited state dynamics of relevant fluorescent dyes and nano-materials, characterization of solar cell materials and diagnosis of neuro-degenerative disease.

机译:光谱学和超分辨率显微镜的应用:相关荧光染料和纳米材料的激发态动力学,太阳能电池材料的表征以及神经退行性疾病的诊断。

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摘要

Photophysics of inorganic materials and organic molecules in complex biological systems and in commercially important materials have been widely studied with absorption and emission spectroscopy. Excited-state properties of fluorophores have been elucidated by steady-state and time-resolved fluorescence studies. Time-resolved fluorescence measurements are generally richer with information about excited-state properties and the environment in the vicinity of the fluorophore than steady-state measurements despite the more extensive use of the later in analytical studies. Throughout the thesis different photophysical studies on systems such as, highly stable fluorescent probes, nano-materials, photovoltaics and infected animal tissues have been discussed. Photoinduced electron transfer between fluorophores used in super-resolution microscopies and amino acids or nano-materials systems have been characterized. These findings can provide better understanding of the properties of different nanomaterials or can help to understand lifetime images of these dyes in biological systems. In addition to spectroscopy, microscopic measurements are very informative; particularly, super-resolution microscopies such as stimulated emission depletion (STED) microscopy can provide us with different properties such as excited-state lifetimes, diffusion etc. with very high resolution. Here we discussed STED experiments on nano-materials and also explored a combination of STED and fluorescence correlation spectroscopy as a possible tool for observing nano-scale heterogeneities in two-dimensional systems. Thirdly, use of fluorescence spectroscopy as an analytical tool for screening of animals with transmissible spongiform disease has been examined. This findings can lead to non-invasive detection of the neurodegenerative diseases. Last but not the least, the fluorescence and absorption based techniques have also been used to characterize different solar cell materials. Here we addressed issues like ordering of polymers, photo-stability, excited-state properties of photovoltaic materials like P3HT and perovskites. The wide range of applications of optical spectroscopies have been investigated under a goal of better understanding of the fundamental processes and using them towards improving existing methods and materials of practical utility.
机译:利用吸收和发射光谱已广泛研究了复杂生物系统和重要商业材料中无机材料和有机分子的光物理性质。荧光团的激发态特性已通过稳态和时间分辨的荧光研究得以阐明。时间分辨的荧光测量通常比稳态测量更丰富有关激发态性质和荧光团附近环境的信息,尽管后者在分析研究中的使用更为广泛。在整个论文中,讨论了对系统的不同光物理研究,例如高度稳定的荧光探针,纳米材料,光伏和受感染的动物组织。已经表征了用于超分辨率显微术的荧光团与氨基酸或纳米材料系统之间的光诱导电子转移。这些发现可以提供对不同纳米材料特性的更好理解,或者可以帮助理解这些染料在生物系统中的寿命图像。除光谱学外,显微测量也非常有用。特别是,超分辨率显微镜,例如激发发射耗尽(STED)显微镜,可以为我们提供非常高分辨率的不同属性,例如激发态寿命,扩散等。在这里,我们讨论了在纳米材料上的STED实验,还探讨了STED和荧光相关光谱的结合作为观察二维系统中纳米级异质性的一种可能工具。第三,已经检查了荧光光谱法作为分析工具来筛选患有传染性海绵状疾病的动物。该发现可以导致神经退行性疾病的非侵入性检测。最后但并非最不重要的一点是,基于荧光和吸收的技术也已用于表征不同的太阳能电池材料。在这里,我们解决了诸如聚合物的排序,光稳定性,光伏材料(如P3HT和钙钛矿)的激发态特性等问题。为了更好地理解基本过程并将其用于改进现有方法和实用材料,已经研究了光学光谱学的广泛应用。

著录项

  • 作者

    Bhattacharjee, Ujjal.;

  • 作者单位

    Iowa State University.;

  • 授予单位 Iowa State University.;
  • 学科 Chemistry.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 242 p.
  • 总页数 242
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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