Selective Solid–Liquid Extraction of Lithium Cation Using Tripodal Sulfate-Binding Receptors Driven by Electrostatic Interactions

Ya Zhi Chen, Ying Chun He*, Li Yan, Wei Zhao*, Biao Wu*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Owing to the important role of and increasing demand for lithium resources, lithium extraction is crucial. The use of molecular extractants is a promising strategy for selective lithium recovery, in which the interaction between lithium and the designed extractant can be manipulated at the molecular level. Herein, we demonstrate that anion receptors of tripodal hexaureas can selectively extract Li2SO4 solids into water containing DMSO (0.8% water) compared to other alkali metal sulfates. The hexaurea receptor with terminal hexyl chains displays the best Li+ extraction selectivity at 2-fold over Na+ and 12.5-fold over K+. The driving force underpinning selective lithium extraction is due to the combined interactions of Li+-SO42− electrostatics and the ion–dipole interaction of the lithium–receptor (carbonyl groups and N atoms); the latter was found to be cation size dependent, as supported by computational calculations. This work indicates that anion binding receptors could drive selective cation extraction, thus providing new insights into the design of receptors for ion recognition and separation.

Original languageEnglish
Article number2445
JournalMolecules
Volume29
Issue number11
DOIs
Publication statusPublished - Jun 2024

Keywords

  • anion receptor
  • lithium separation
  • molecular recognition
  • oligourea
  • solid–liquid extraction
  • supramolecular chemistry

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