Rapid Water Permeation by Aramid Foldamer Nanochannels With Hydrophobic Interiors

S Saquib Farooq (Department of Chemistry University of Fribourg Chemin du Musée 9 Fribourg CH‐1700 Switzerland) J Javid Ahmad Malla (Artificial Molecular Machinery Laboratory The Francis Crick Institute 1 Midland Road London NW1 1AT UK) M Miroslava Nedyalkova (Department of Chemistry University of Fribourg Chemin du Musée 9 Fribourg CH‐1700 Switzerland) R Rafael V. M. Freire (Laboratory of Self-Organizing Soft Matter, Department of Chemical Engineering and Chemistry) I Indradip Mandal (Department of Chemistry University of Fribourg Chemin du Musée 9 Fribourg 1700 Switzerland) A Aurelien Crochet (Department of Chemistry University of Fribourg Chemin du Musée 9 Fribourg CH‐1700 Switzerland) S Stefan Salentinig (Department of Chemistry, University of Fribourg, Chemin du Musée 9, 1700 Fribourg, Switzerland) M Marco Lattuada (Department of Chemistry University of Fribourg Chemin du Musée 9 Fribourg CH‐1700 Switzerland) C Charlie T. McTernan (Artificial Molecular Machinery Laboratory The Francis Crick Institute London UK) A Andreas F. M. Kilbinger (Department of Chemistry University of Fribourg Chemin du Musée 9 Fribourg 1700 Switzerland)

Abstract

Abstract Aquaporins are natural proteins that rapidly transport water across cell membranes, maintaining homeostasis, whilst strictly excluding salt. This has inspired their use in water purification and desalination, a critical emerging need. However, stability, scalability, and cost have prevented their widespread adoption in water purification membrane technologies. As such, attention has turned to the use of artificial water channels, with pore‐functionalized polymers and macrocycles providing a powerful alternative. Whilst impressive rates of transport have been achieved, the combination of a scalable, high‐yielding synthesis and efficient transport has not yet been reported. Herein, we report such a system, with densely functionalized channel interiors, synthesized by high‐yielding living polymerization with low polydispersities, showing high salt exclusion and excellent water transport rates. Our aramid foldamers create artificial water channels with hydrophobic interiors and single‐channel water permeability rates of up to 10 8 water molecules per second per channel, approaching the range of natural aquaporins (c. 10 9 ). We show that water transport rates closely correspond to the helical length, with the polymer that most closely matches bilayer thickness showing optimal efficacy, as supported by molecular dynamics (MD) simulations. Our work provides a basis for the scalable synthesis of next‐generation artificial water channels.

Article Details

Volume / Issue Vol. 64, Issue 22
Published May 26, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

S

Saquib Farooq

Department of Chemistry University of Fribourg Chemin du Musée 9 Fribourg CH‐1700 Switzerland

J

Javid Ahmad Malla

Artificial Molecular Machinery Laboratory The Francis Crick Institute 1 Midland Road London NW1 1AT UK

M

Miroslava Nedyalkova

Department of Chemistry University of Fribourg Chemin du Musée 9 Fribourg CH‐1700 Switzerland

R

Rafael V. M. Freire

Laboratory of Self-Organizing Soft Matter, Department of Chemical Engineering and Chemistry

I

Indradip Mandal

Department of Chemistry University of Fribourg Chemin du Musée 9 Fribourg 1700 Switzerland

A

Aurelien Crochet

Department of Chemistry University of Fribourg Chemin du Musée 9 Fribourg CH‐1700 Switzerland

S

Stefan Salentinig

Department of Chemistry, University of Fribourg, Chemin du Musée 9, 1700 Fribourg, Switzerland

M

Marco Lattuada

Department of Chemistry University of Fribourg Chemin du Musée 9 Fribourg CH‐1700 Switzerland

C

Charlie T. McTernan

Artificial Molecular Machinery Laboratory The Francis Crick Institute London UK

A

Andreas F. M. Kilbinger

Department of Chemistry University of Fribourg Chemin du Musée 9 Fribourg 1700 Switzerland