Direct observation of photoinduced sequential spin transition in a halogen-bonded hybrid system by complementary ultrafast optical and electron probes.
Yifeng JiangStuart HayesSimon BittmannAntoine SarraciniLai Chung LiuHenrike M Müller-WerkmeisterAtsuhiro MiyawakiMasaki HadaShinnosuke NakanoRyoya TakahashiSamiran BanuShin-Ya KoshiharaKazuyuki TakahashiTadahiko IshikawaR J Dwyane MillerPublished in: Nature communications (2024)
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.
Keyphrases
- electron transfer
- energy transfer
- density functional theory
- drug delivery
- high temperature
- single molecule
- ionic liquid
- molecular dynamics
- high resolution
- room temperature
- cancer therapy
- high speed
- small molecule
- randomized controlled trial
- genome wide
- molecular docking
- mass spectrometry
- molecular dynamics simulations
- photodynamic therapy
- transition metal
- monte carlo
- cerebral ischemia
- crystal structure
- drug discovery