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通过互补的超快光学和电子探针直接观察卤键杂化体系中的光致顺序自旋转变。

Direct observation of photoinduced sequential spin transition in a halogen-bonded hybrid system by complementary ultrafast optical and electron probes.

作者信息

Jiang Yifeng, Hayes Stuart, Bittmann Simon, Sarracini Antoine, Liu Lai Chung, Müller-Werkmeister Henrike M, Miyawaki Atsuhiro, Hada Masaki, Nakano Shinnosuke, Takahashi Ryoya, Banu Samiran, Koshihara Shin-Ya, Takahashi Kazuyuki, Ishikawa Tadahiko, Miller R J Dwayne

机构信息

European XFEL, Holzkoppel 4, 22869, Schenefeld, Germany.

Departments of Chemistry and Physics, University of Toronto, 80 St. George St., Toronto, M5S 3H6, ON, Canada.

出版信息

Nat Commun. 2024 Jun 4;15(1):4604. doi: 10.1038/s41467-024-48529-1.

Abstract

A detailed understanding of the ultrafast dynamics of halogen-bonded materials is desired for designing supramolecular materials and tuning various electronic properties by external stimuli. Here, a prototypical halogen-bonded multifunctional material containing spin crossover (SCO) cations and paramagnetic radical anions is studied as a model system of photo-switchable SCO hybrid systems using ultrafast electron diffraction and two complementary optical spectroscopic techniques. Our results reveal a sequential dynamics from SCO to radical dimer softening, uncovering a key transient intermediate state. In combination with quantum chemistry calculations, we demonstrate the presence of halogen bonds in the low- and high-temperature phases and propose their role during the photoinduced sequential dynamics, underscoring the significance of exploring ultrafast dynamics. Our research highlights the promising utility of halogen bonds in finely tuning functional properties across diverse photoactive multifunctional materials.

摘要

为了设计超分子材料并通过外部刺激调节各种电子特性,需要深入了解卤键材料的超快动力学。在此,我们研究了一种包含自旋交叉(SCO)阳离子和顺磁性自由基阴离子的典型卤键多功能材料,作为使用超快电子衍射和两种互补光学光谱技术的光开关SCO混合系统的模型体系。我们的结果揭示了从SCO到自由基二聚体软化的顺序动力学,揭示了一个关键的瞬态中间态。结合量子化学计算,我们证明了在低温和高温相中存在卤键,并提出了它们在光诱导顺序动力学中的作用,强调了探索超快动力学的重要性。我们的研究突出了卤键在微调各种光活性多功能材料的功能特性方面的潜在用途。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dd22/11150260/9fd015317b62/41467_2024_48529_Fig1_HTML.jpg

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