INQUIMAE   12526
INSTITUTO DE QUIMICA, FISICA DE LOS MATERIALES, MEDIOAMBIENTE Y ENERGIA
Unidad Ejecutora - UE
artículos
Título:
Nickel(II) complexes based on L -amino-acid-derived ligands: synthesis, characterization and study of the role of the supramolecular structure in carbon dioxide capture
Autor/es:
SÁNCHEZ MONTILVA, OLGA CAROLINA; ALBORES, PABLO; MOVILLA, FEDERICO; CARRELLA, LUCA; RIVAS MARQUINA, ANDREA; RENTSCHLER, EVA; DI SALVO, FLORENCIA; SÁNCHEZ MONTILVA, OLGA CAROLINA; ALBORES, PABLO; MOVILLA, FEDERICO; CARRELLA, LUCA; RIVAS MARQUINA, ANDREA; RENTSCHLER, EVA; DI SALVO, FLORENCIA
Revista:
Acta Crystallographica Section B Structural Science, Crystal Engineering and Materials
Editorial:
IUCR
Referencias:
Año: 2020 vol. 76 p. 825 - 838
ISSN:
2052-5192
Resumen:
The formation of the symmetrical μ3-carbonate-bridged self-assembled tri­nuclear NiII com­plex Na2{[Ni(LO)2(H2O)]3(μ3-CO3)} (LO is the carboxyl­ate anion of a L-tyrosine derivative), involves atmospheric CO2 uptake. The asym­metric unit of the com­plex com­prises an octahedral coordination for the NiII with two L-tyrosine-based ligands, a water molecule and one O atom of the carbonate bridge. The Ni3?μ3-CO3 core in this com­pound is the first reported of this kind according to the Cambridge Structural Database (CSD). The supramolecular structure is mainly sustained by hydrogen bonds developed by the phenolic functionality of the L-tyrosine moiety of one ligand and the carboxyl­ate group of a neighbouring ligand. The crystal packing is then characterized by three interpenetrated supramolecular helices associated with a diastereoisomer of the type R-supP, which is essential for the assembly process. Magnetic susceptibility and magnetization data support weak ferromagnetic exchange interactions within the novel Ni3?μ3-CO3 core. The NiII com­plex obtained under the same synthetic conditions but using the analogous ligand derived from the amino acid L-phenyl­alanine instead of L-tyrosine gives rise to to a mononuclear octahedral system. The results obtained for the different com­plexes demonstrate the role of the supramolecular structure regarding the CO2 uptake property for these NiII?amino-acid-based systems.