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Spectroscopic and microscopic investigations of tautomerization in porphycenes: condensed phases, supersonic jets, and single molecule studies

机译:卟啉中互变异构的光谱和显微镜研究:凝聚相,超音速喷射和单分子研究

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摘要

We describe various experimental approaches that have been used to obtain a detailed understanding of double hydrogen transfer in porphycene, a model system for intramolecular hydrogen bonding and tautomerism. The emerging picture is that of a multidimensional tautomerization coordinate, with several vibrational modes acting as reaction-promoters or inhibitors through anharmonic intermode coupling. Tunnelling processes, coherent in the case of isolated molecules and incoherent in condensed phases, are found to play a major role even at elevated temperatures. Single-molecule spectroscopy studies reveal large fluctuations in hydrogen transfer rates observed over time for the same chromophore. Scanning probe microscopy is employed to directly observe the structure and tautomerization dynamics of single molecules adsorbed on metal surfaces and demonstrates how the interactions of the molecules with atoms of the supporting surface affect their static and dynamic properties: different tautomeric forms are stabilized for molecules depending on the surface structure and the reaction mechanism can also change, from a concerted to a stepwise transfer. The scanning probe microscopy studies prove that tautomerization in single molecules can be induced by different stimuli: heat, electron attachment, light, and force exerted by the microscope’s tip. Possible applications utilizing tautomerism are discussed in combination with molecular architectures on surfaces, which could pave the way for the development of single-molecule electronics.
机译:我们描述了各种实验方法,这些方法已用于获得对卟啉中双氢转移的详细理解,这是分子内氢键和互变异构的模型系统。新兴的图片是多维互变异构坐标的图片,其中几种振动模式通过非谐态模间耦合充当反应促进剂或抑制剂。发现即使在升高的温度下,隧穿过程在分离分子的情况下是连贯的,在冷凝相中是不连贯的,其起着重要作用。单分子光谱研究表明,对于相同的生色团,随着时间的推移,氢转移速率会出现较大的波动。扫描探针显微镜用于直接观察吸附在金属表面的单分子的结构和互变异构动力学,并证明分子与支撑表面原子的相互作用如何影响其静态和动态特性:不同的互变异构形式对分子稳定,具体取决于表面结构和反应机理也可能发生变化,从一致转移到逐步转移。扫描探针显微镜研究证明,单个分子的互变异构可以通过不同的刺激来诱导:热,电子附着,光和显微镜尖端施加的力。结合表面上的分子结构,讨论了利用互变异构的可能应用,这可能为单分子电子学的发展铺平道路。

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