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Magnetic Anisotropy Drives Magnetochiral Dichroism in a Chiral Molecular Helix Probed with Visible Light
Author(s) -
Matteo Atzori,
Fabio Santanni,
Ivan Breslavetz,
Kévin Paillot,
Andréa Caneschi,
G. L. J. A. Rikken,
Roberta Sessoli,
Cyrille Train
Publication year - 2020
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.0c06166
Subject(s) - chemistry , magnetic circular dichroism , antiferromagnetism , anisotropy , dichroism , magnetic field , visible spectrum , linear dichroism , x ray magnetic circular dichroism , magnetic susceptibility , magnetic anisotropy , ion , circular dichroism , condensed matter physics , molecular physics , crystallography , spectral line , optics , physics , magnetization , organic chemistry , quantum mechanics , astronomy
Magnetochiral dichroism (MChD) is a nonreciprocal manifestation of light-matter interaction that can be observed in chiral magnetized systems. It features a differential absorption of unpolarized light depending on the relative orientation of the magnetic field and the light wavevector and on the absolute configuration of the system. The relevance of this effect for optical readout of magnetic data calls for a complete understanding of the microscopic parameters driving MChD with an easy-accessible and nondamaging light source, such as visible light. For this purpose, here we report on MChD detected with visible light on a chiral magnetic helix formulated as [Mn III (cyclam)(SO 4 )]ClO 4 ·H 2 O (cyclam = 1,4,8,11-tetraazacyclotetradecane) featuring antiferromagnetically coupled anisotropic Mn III ions. Alternate current susceptibility measurements revealed the existence of a single-chain magnet behavior hidden below the canted antiferromagnetism ( T N = 5.8 K) already evidenced by direct current magnetometry. A detailed analysis of the optical absorption gives access to the value of the zero-field splitting parameter D (2.9 cm -1 ), which quantifies the magnetic anisotropy of the Mn III centers. Below the magnetic ordering temperature of the material, the MChD spectra exhibit intense absolute configuration dependent MChD signals reaching record values of ca. 12% of the absorbed intensity for the two electronic transitions most influenced by the spin-orbit coupling of the Mn III ion. These findings set a clear route toward the design and preparation of highly MChD-responsive molecular materials.

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