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Femtosecond electron diffraction and spectroscopic studies of a solid state organic chemical reaction.

机译:飞秒电子衍射和固体有机化学反应的光谱研究。

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摘要

Photochromic diarylethene molecules are excellent model systems for studying electrocyclic reactions, in addition to having important technological applications in optoelectronics. The photoinduced ring-closing reaction in a crystalline photochromic diarylethene derivative was fully resolved using the complementary techniques of transient absorption spectroscopy and femtosecond electron crystallography. These studies are detailed in this thesis, together with the associated technical developments which enabled them. Importantly, the time-resolved crystallographic investigation reported here represents a highly significant proof-of-principle experiment. It constitutes the first study directly probing the molecular structural changes associated with an organic chemical reaction with sub-picosecond temporal and atomic spatial resolution---to follow the primary motions directing chemistry.;In terms of technological development, the most important advance reported is the implementation of a radio frequency rebunching system capable of producing femtosecond electron pulses of exceptional brightness. The temporal resolution of this newly developed electron source was fully characterized using laser ponderomotive scattering, confirming a 435 +/- 75 fs instrument response time with 0.20 pC bunches. The ultrafast spectroscopic and crystallographic measurements were both achieved by exploiting the photoreversibility of diarylethene. The transient absorption study was first performed, after developing a novel robust acquisition scheme for thermally irreversible reactions in the solid state. It revealed the formation of an open-ring excited state intermediate, following photoexcitation of the open-ring isomer with an ultraviolet laser pulse, with a time constant of approximately 200 fs. The actual ring closing was found to occur from this intermediate with a time constant of 5.3 +/- 0.3 ps. The femtosecond diffraction measurements were then performed using multiple crystal orientations and a large number of different samples. To analyse the results, an innovative method was developed in which the apparently complex ring-closing reaction is distilled down to a small number of basic rotations. Immediately following photoexcitation, sub-picosecond structural changes associated with the formation of the intermediate are observed. The rotation of the thiophene rings is identified as the key motion. Subsequently, on the few picosecond time scale, the time-resolved diffraction patterns are observed to converge towards those associated with the closed-ring photoproduct. The formation of the closed-ring molecule is thus unambiguously witnessed.
机译:除了在光电学中具有重要的技术应用之外,光致变色二芳基乙烯分子是研究电环反应的出色模型系统。使用瞬态吸收光谱法和飞秒电子晶体学的互补技术,可以完全解决晶体光致变色二芳基乙烯衍生物中的光诱导闭环反应。本文对这些研究进行了详细介绍,并结合了使它们得以发展的相关技术发展。重要的是,这里报道的时间分辨晶体学研究代表了非常重要的原理证明实验。它构成了第一项直接研究与皮秒级以下的时间和原子空间分辨率有关的有机化学反应相关的分子结构变化的研究,以跟随化学的主要运动;在技术发展方面,最重要的进展是能够产生异常亮度的飞秒电子脉冲的射频重聚系统的实现。这种新开发的电子源的时间分辨率可以通过激光质子能散射得到充分表征,从而证实了435 +/- 75 fs的仪器响应时间为0.20 pC束。超快光谱和晶体学测量均通过利用二芳基乙烯的光可逆性来实现。在开发了一种用于固态热不可逆反应的新型稳健采集方案后,首先进行了瞬态吸收研究。它揭示了在开环异构体被紫外激光脉冲光激发后,开环激发态中间体的形成,其时间常数约为200 fs。发现从该中间体发生实际的闭环,其时间常数为5.3 +/- 0.3 ps。然后使用多个晶体取向和大量不同的样品进行飞秒衍射测量。为了分析结果,开发了一种创新的方法,其中将看似复杂的闭环反应精馏至少量的基本旋转。光激发后,立即观察到与中间体形成相关的亚皮秒级结构变化。噻吩环的旋转被识别为键运动。随后,在几皮秒的时间尺度上,观察到时间分辨的衍射图会聚到与闭环光产物相关的方向。因此,可以清楚地看到闭环分子的形成。

著录项

  • 作者

    Jean-Ruel, Hubert.;

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Physics Optics.;Chemistry Physical.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 153 p.
  • 总页数 153
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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