Chow Chun Y, Guillot Régis, Rivière Eric, Kampf Jeff W, Mallah Talal, Pecoraro Vincent L
Department of Chemistry, University of Michigan , Ann Arbor, Michigan 48109-1055, United States.
Institut de Chemie Moléculaire et des Matériaux d'Orsay, CNRS, Université de Paris Sud 11 , 91405 Orsay Cedex, France.
Inorg Chem. 2016 Oct 17;55(20):10238-10247. doi: 10.1021/acs.inorgchem.6b01404. Epub 2016 Oct 4.
The structural characterization and magnetic properties of three related 9-metallacrown-3 (9-MC-3) structures are reported. Each of these iron complexes is shown to exhibit significant magnetic refrigerant properties. Fe(acetate)9-MC-3·MeOH·7HO (1-OAc) and Fe(benzoate)9-MC-3·MeOH·4HO (1-OBz) are structurally analogous tetranuclear iron(III) clusters which exhibit drastically different magnetic properties, due to differences in intermolecular and intramolecular π interactions which affect superexchange. 1-OAc displays a magnetocaloric effect with a maximum entropy change of -ΔS = 15.4 J kg K at T = 3 K and an applied field change of μΔH = 7 T, whereas 1-OBz exhibits a maximum -ΔS = 7.4 J kg K at T = 7 K and μΔH = 7 T and displays an inverse magnetocaloric effect at lower temperatures and field changes. 1-OAc has -ΔS values comparable to those of other Fe-based MCE materials and displays a significant MCE at lower applied fields, with -ΔS = 11.2 J kg K at 3 K and μΔH = 3 T. The tetranuclear core of 1 may be linked with isophthalate to form an octanuclear Fe(isophthalate)[9-MC-3] dimer (2) that crystallizes in a honeycomb packing arrangement and exhibits solvation-dependent magnetic properties. The MCE for this molecule ranges from -ΔS = 9.9 J kg K at T = 5 K and μΔH = 7 T, when the pores of the material are highly occupied with solvent, to -ΔS = 5.4 J kg K, when the system is fully desolvated.