Helicene-Based Ligands Enable Strong Magneto-Chiral Dichroism in a Chiral Ytterbium Complex
Author(s) -
Matteo Atzori,
Kais Dhbaibi,
Haiet Douib,
Maxime Grasser,
Vincent Dorcet,
Ivan Breslavetz,
Kévin Paillot,
Olivier Cador,
G. L. J. A. Rikken,
Boris Le Guennic,
Jeanne Crassous,
Fabrice Pointillart,
Cyrille Train
Publication year - 2021
Publication title -
journal of the american chemical society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 7.115
H-Index - 612
eISSN - 1520-5126
pISSN - 0002-7863
DOI - 10.1021/jacs.0c13180
Subject(s) - helicene , chemistry , enantiopure drug , chirality (physics) , enantiomer , circular dichroism , dichroic glass , lanthanide , crystallography , dichroism , ytterbium , absorption spectroscopy , photochemistry , molecule , enantioselective synthesis , stereochemistry , condensed matter physics , optics , symmetry breaking , chiral symmetry breaking , ion , physics , organic chemistry , catalysis , quantum mechanics , doping , nambu–jona lasinio model
Here we report the first experimental observation of magneto-chiral dichroism (MChD) detected through light absorption in an enantiopure lanthanide complex. The P and M enantiomers of [Yb III (( X )- L )( hfac ) 3 ] (X = P , M ; L = 3-(2-pyridyl)-4-aza[6]-helicene; hfac = 1,1,1,5,5,5-hexafluoroacetylacetonate), where the chirality is held by the helicene-based ligand, were studied in the near-infrared spectral window. When irradiated with unpolarized light in a magnetic field, these chiral complexes exhibit a strong MChD signal ( g MChD ca. 0.12 T -1 ) associated with the 2 F 5/2 ← 2 F 7/2 electronic transition of Yb III . The low temperature absorption and MChD spectra reveal a fine structure associated with crystal field splitting and vibronic coupling. The temperature dependence of the main dichroic signal detected up to 150 K allowed, for the first time, the disentanglement of the two main microscopic contributions to the dichroic signal predicted by the MChD theory. These findings pave the way toward probing MChD in chiral lanthanide-based single-molecule magnets.
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