Related Experiment Video
Updated: Feb 3, 2026

Detection of Viruses from Bioaerosols Using Anion Exchange Resin
Published on: August 22, 2018
Anion Exchange Drives Reversible Phase Transfer of Coordination Cages and Their Cargoes
Angela B Grommet1, Jack B Hoffman1, Edmundo G Percástegui1
1Department of Chemistry , University of Cambridge , Lensfield Road, Cambridge CB2 1EW , United Kingdom.
Abstract:
Chemical separations technologies are energetically costly; lowering this cost through the development of new molecular separation methods would thus enable significant energy savings. Molecules could, for example, be selectively encapsulated and separated using coordination cages, which can be designed with cavities of tailored sizes and geometries. Before cages can be used to perform industrially relevant separations, however, the experimental and theoretical foundations for this technology must be established. Using hydrophobic and hydrophilic anions as stimuli, we show that cages can reversibly transfer many times between mutually immiscible liquid phases, thus transporting their molecular cargoes over macroscopic distances. Furthermore, when two cages are dissolved together, sequential phase transfer of individual cage species results in the separation of their molecular cargoes. We present a thermodynamic model that describes the transfer profiles of these cages, both individually and in the presence of other cage species. This model provides a new analytical tool to quantify the hydrophobicity of cages.
Related Concept Videos
Types of Chemical Reactions: Exchange and Reversible
A special kind of exchange reaction is the oxidation-reduction reaction, or the redox reaction. These reactions involve the transfer of electrons from one compound to another. The electrons in these reactions commonly come from hydrogen atoms, which consist of an electron and a proton. A molecule gives up a...
Coordination Number and Geometry
Coordination Compounds and Nomenclature
Social Exchange Theory
Gas Exchange and Transport
Ionic Bonding and Electron Transfer

