Water-mediated ion transport in an anion exchange membrane

Z Zhongyang Wang (Pritzker School of Molecular Engineering) G Ge Sun (Pritzker School of Molecular Engineering) N Nicholas H. C. Lewis (Department of Chemistry, James Franck Institute, Institute for Biophysical Dynamics, The University of Chicago) M Mrinmay Mandal (School of Chemical and Biomolecular Engineering) A Abhishek Sharma M Mincheol Kim (Pritzker School of Molecular Engineering) J Joan M. Montes de Oca K Kai Wang A Aaron Taggart A Alex B. Martinson P Paul A. Kohl (School of Chemical and Biomolecular Engineering) A Andrei Tokmakoff (Department of Chemistry, James Franck Institute, Institute for Biophysical Dynamics, The University of Chicago) S Shrayesh N. Patel (Pritzker School of Molecular Engineering) P Paul F. Nealey (Pritzker School of Molecular Engineering) J Juan J. de Pablo (Pritzker School of Molecular Engineering)

Abstract

Abstract Water is a critical component in polyelectrolyte anion exchange membranes (AEMs). It plays a central role in ion transport in electrochemical systems. Gaining a better understanding of molecular transport and conductivity in AEMs has been challenged by the lack of a general methodology capable of capturing and connecting water dynamics, water structure, and ionic transport over time and length scales ranging from those associated with individual bond vibrations and molecular reorientations to those pertaining to macroscopic AEM performance. In this work, we use two-dimensional infrared spectroscopy and semiclassical simulations to examine how water molecules are arranged into successive solvation shells, and we explain how that structure influences the dynamics of bromide ion transport processes in polynorbornene-based materials. We find that the transition to the faster transport mechanism occurs when the reorientation of water molecules in the second solvation shell is fast, allowing a robust hydrogen bond network to form. Our findings provide molecular-level insights into AEMs with inherent transport of halide ions, and help pave the way towards a comprehensive understanding of hydroxide ion transport in AEMs.

Article Details

Volume / Issue Vol. 16, Issue 1
Published January 28, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (15)

Z

Zhongyang Wang

Pritzker School of Molecular Engineering

G

Ge Sun

Pritzker School of Molecular Engineering

N

Nicholas H. C. Lewis

Department of Chemistry, James Franck Institute, Institute for Biophysical Dynamics, The University of Chicago

M

Mrinmay Mandal

School of Chemical and Biomolecular Engineering

A

Abhishek Sharma

M

Mincheol Kim

Pritzker School of Molecular Engineering

J

Joan M. Montes de Oca

K

Kai Wang

A

Aaron Taggart

A

Alex B. Martinson

P

Paul A. Kohl

School of Chemical and Biomolecular Engineering

A

Andrei Tokmakoff

Department of Chemistry, James Franck Institute, Institute for Biophysical Dynamics, The University of Chicago

S

Shrayesh N. Patel

Pritzker School of Molecular Engineering

P

Paul F. Nealey

Pritzker School of Molecular Engineering

J

Juan J. de Pablo

Pritzker School of Molecular Engineering