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A Chiral Prussian Blue Analogue Pushes Magneto-Chiral Dichroism Limits
Author(s) -
Matteo Atzori,
Ivan Breslavetz,
Kévin Paillot,
Katsuya Inoue,
G. L. J. A. Rikken,
Cyrille Train
Publication year - 2019
Publication title -
journal of the american chemical society
Language(s) - Uncategorized
Resource type - Journals
SCImago Journal Rank - 7.115
H-Index - 612
eISSN - 1520-5126
pISSN - 0002-7863
DOI - 10.1021/jacs.9b10970
Subject(s) - ferrimagnetism , chemistry , prussian blue , magnetic circular dichroism , enantiopure drug , magnetization , dichroism , spectral line , circular dichroism , crystallography , absorption spectroscopy , metal , absolute configuration , condensed matter physics , magnetic field , stereochemistry , optics , enantioselective synthesis , physics , biochemistry , catalysis , organic chemistry , electrode , quantum mechanics , astronomy , electrochemistry
Here we report on magneto-chiral dichroism (MChD) detected with visible light on the chiral Prussian Blue Analogue [Mn II ( X - pn H)(H 2 O)][Cr III (CN) 6 ]·H 2 O (X = S , R ; pn = 1,2-propanediamine). Single crystals suitable for magneto-optical measurements were grown starting from enantiopure chiral ligands. X-ray diffraction and magnetic measurements confirmed the 2D-layered structure of the material, its absolute configuration, and its ferrimagnetic ordered state below a critical temperature T C  of 38 K. Absorption and MChD spectra were measured between 450 and 900 nm from room temperature down to 4 K. At 4 K the electronic spectrum features spin-allowed and spin-forbidden transitions of Cr III centers, spin-forbidden transitions of the Mn II centers, and metal-to-metal charge transfer bands. The MChD spectra below the magnetic ordering temperature exhibit intense absolute configuration-dependent MChD signals. The temperature dependence of these signals closely follows the material magnetization. Under a magnetic field of 0.46 T, the most intense contribution to MChD represents 2.6% T -1 of the absorbed intensity, one of the highest values observed to date.

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