Complex formation of nickel(ii) with dimethyl sulfoxide, methanol, and acetonitrile in a TFSA-based ionic liquid of [Cmim][TFSA].

Phys Chem Chem Phys

Department of Chemistry and Applied Chemistry, Graduate School of Science and Engineering, Saga University, Honjo-Machi, Saga 840-8502, Japan.

Published: November 2017

AI Article Synopsis

  • The study investigates the complex formation of nickel (Ni) with molecular liquids like DMSO, MeOH, and AN in an ionic liquid ([Cmim][TFSA]) using UV-visible spectroscopy.
  • X-ray analyses reveal that Ni coordinates with six oxygen or nitrogen atoms from the molecular liquids, forming octahedral structures.
  • The stability of the resulting complexes is influenced by factors like electron donicity and hydrogen bonding, demonstrating that more electron-donating ligands (like DMSO) can lead to more stable complexes than those with higher electron donicity (like MeOH).

Article Abstract

The thermodynamics of complex formation of Ni with molecular liquids (ML), dimethyl sulfoxide (DMSO), methanol (MeOH), and acetonitrile (AN) in the ionic liquid (IL) of 1-ethyl-3-methylimidazolium bis(trifluoromethylsulfonyl)amide ([Cmim][TFSA]) has been elucidated using ultraviolet (UV)-visible spectroscopy. X-ray structural analyses for single crystals grown from Ni-[Cmim][TFSA]-DMSO and -AN solutions at high ML contents have shown that six DMSO oxygen or AN nitrogen atoms coordinate with Ni to form octahedral structures of [Ni(dmso)](TFSA) and [Ni(an)](TFSA), respectively. This is the same in the case of the Co complex of [Co(dmso)](TFSA). UV-visible spectroscopic experiments have revealed that the TFSA anions that initially combine with Ni in the IL are replaced with ML molecules in the IL-ML systems in three steps with increasing ML content. The electron donicities of the three MLs are larger in the order of DMSO > MeOH > AN. However, the stability of each complex does not simply depend on this order; the stability is higher in the order of [Ni(dmso)] > [Ni(an)] > [Ni(meoh)]. In other words, the stability of the MeOH complexes is lower than that of the AN ones, despite the higher electron donicity of MeOH. The reasons for the order of the complex stabilities have been interpreted on the molecular scale, according to the stepwise enthalpies and entropies determined, together with the strength of the hydrogen bonding between the MLs and the imidazolium ring and the formation of MeOH clusters in [Cmim][TFSA].

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Source
http://dx.doi.org/10.1039/c7cp06469aDOI Listing

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