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超声分子束光谱法研究母体半卟啉:S 和 S 电子态的结构归属与振动分析。

Supersonic jet spectroscopy of parent hemiporphycene: Structural assignment and vibrational analysis for S and S electronic states.

机构信息

Institute of Physical Chemistry, Polish Academy of Sciences, Kasprzaka 44/52, 01-224 Warsaw, Poland.

CNRS, Institut des Sciences Moléculaires d'Orsay (ISMO), Orsay, France.

出版信息

J Chem Phys. 2018 Oct 7;149(13):134307. doi: 10.1063/1.5048843.

Abstract

Hemiporphycene (HPc), a constitutional isomer of porphyrin, is studied under supersonic expansion conditions by means of laser-induced fluorescence, visible-visible hole-burning experiments, single vibronic level fluorescence techniques, and quantum chemical calculations. Only one form of jet-cooled HPc is observed, in contrast to solution studies that evidence a mixture of two tautomeric forms separated in energy by ∼1 kcal/mol. Reliable structural assignment is provided by simulating absorption and emission patterns at the density functional theory and time-dependent density functional theory levels of theory. The vibronic spectra are nicely reproduced for both electronic ground and lowest excited singlet states for the most stable form. In contrast to another porphyrin isomer, porphycene (Pc), no tunneling or photo-induced hydrogen transfer is detected. The lower symmetry of HPc compared with Pc and the concomitant non-equivalent positions of the inner-cavity nitrogen atoms result in a non-symmetric double minimum potential for tautomerization, larger energy barrier, and a longer tunneling distance, with the average intramolecular hydrogen bond length larger in HPc than in Pc. HPc readily forms hydrates that show red-shifted absorption relative to the bare molecule.

摘要

血卟啉(HPc)是卟啉的一种构象异构体,在超声速膨胀条件下通过激光诱导荧光、可见-可见孔烧蚀实验、单振子荧光技术和量子化学计算进行研究。与溶液研究中观察到的两种互变异构形式的混合物不同,仅观察到一种形式的喷射冷却 HPc,其能量分离约为 1 千卡/摩尔。通过在密度泛函理论和含时密度泛函理论水平上模拟吸收和发射模式,提供了可靠的结构分配。对于最稳定的形式,两种电子基态和最低激发单重态的振子光谱都得到了很好的重现。与另一种卟啉异构体卟啉(Pc)不同,未检测到隧道或光诱导氢转移。与 Pc 相比,HPc 的较低对称性以及内腔氮原子的非等效位置导致互变异构的非对称双势垒,能量势垒较大,隧道距离较长,HPc 中的分子内氢键长度大于 Pc。HPc 很容易形成水合物,与裸分子相比,水合物的吸收发生红移。

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