Mechanical Bond Enhanced Lithium Halide Ion-Pair Binding by Halogen Bonding Heteroditopic Rotaxanes

18 April 2022, Version 1
This content is a preprint and has not undergone peer review at the time of posting.

Abstract

A family of novel halogen bonding (XB) and hydrogen bonding (HB) heteroditopic [2]rotaxane host systems constructed by active metal template (AMT) methodology, were studied for their ability to cooperatively recognise lithium halide (LiX) ion-pairs. 1H NMR ion-pair titration experiments in CD3CN:CDCl3 solvent mixtures revealed a notable “switch-on“ of halide anion binding in the presence of a co-bound lithium cation, with rotaxane hosts demonstrating selectivity for LiBr over LiI. The strength of halide binding was shown to greatly increase with increasing number of halogen bond donors integrated into the interlocked cavity, where an all-XB rotaxane was found to be the most potent host for LiBr. DFT calculations corroborated these findings, determining the mode of LiX ion-pair binding. Notably, ion-pair binding was not observed with the corresponding XB/HB macrocycles alone, highlighting the cooperative heteroditopic rotaxane axle-macrocycle component mechanical bond effect as an efficient strategy for ion-pair recognition in general.

Keywords

Heteroditopic rotaxane
Lithium halide
Ion-pair
Halogen bond
Hydrogen bond

Supplementary materials

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Title
Mechanical Bond Enhanced Lithium Halide Ion-Pair Binding by Halogen Bonding Heteroditopic Rotaxanes
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Electronic Supplementary Information
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