Lithium chloride selective ion-pair recognition by heteroditopic [2]rotaxanes.

Dalton Trans

Department of Chemistry, University of Oxford, Chemistry Research Laboratory Mansfield Road, Oxford OX1 3TA, UK.

Published: August 2024

AI Article Synopsis

  • The study presents a unique type of rotaxane host system designed to selectively bind lithium chloride ion-pair species, demonstrating a mechanism where lithium cation binding simultaneously increases the affinity for halide anions.
  • The rotaxane consists of a macrocycle with specific binding sites for both cations and anions, and an axle that can enhance these interactions through either halogen or hydrogen bonding.
  • Experimental techniques like H NMR titration and X-ray crystallography were employed to confirm that this rotaxane design shows a clear preference for binding lithium halides over sodium or potassium halides, particularly highlighting the selectivity for lithium chloride.

Article Abstract

The first heteroditopic [2]rotaxane host systems capable of strong and selective binding of lithium chloride ion-pair species are described. Importantly, a cooperative 'switch on' mechanism was found to operate, in which complexation of a lithium metal cation enhances the halide anion affinity of the rotaxanes a combination of favourable proximal electrostatic and preorganised allosteric effects. The mechanically bonded rotaxane host design features a macrocycle component possessing a 2,6-dialkoxy pyridyl cation binding motif and an isophthalamide anion binding group, as well as an axle component functionalised with either a halogen bonding (XB) iodotriazole or hydrogen bonding (HB) prototriazole moiety. Extensive quantitative H NMR titration studies in CDCN/CDCl solvent mixtures determined enhanced ion-pair binding affinities for lithium halides over the corresponding sodium or potassium halide salts, with the axle prototriazole-containing HB rotaxane in particular demonstrating a marked selectivity for lithium chloride. Solid-state X-ray crystallographic studies and computational DFT investigations provide evidence for a [2]rotaxane host axle-separated ion-pair binding mode, in which complementary cation and anion binding motifs from both the macrocycle and axle components act convergently to recognise each of the charged guest species.

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Source
http://dx.doi.org/10.1039/d4dt01807aDOI Listing

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