Ordered Ionic‐Liquid Channels Enable Fast Anhydrous Proton Conduction at up to 240°C for Fuel Cells

M Mazin Al‐Alawi (School of Chemistry Monash University Clayton Victoria Australia) K Kaiqiang He (Department of Chemical and Biological Engineering Monash University Clayton Victoria Australia) M Mattia Belotti (School of Molecular and Life Sciences) F Fanmengjing Wang (Department of Chemical and Biological Engineering Monash University Clayton Victoria Australia) J Jiffin Oommen (School of Chemistry Monash University Clayton Victoria Australia) D Douglas R. MacFarlane (School of Chemistry) H Hoang‐Long Du (School of Chemistry Monash University Clayton Victoria Australia) A Alexandr N. Simonov (School of Chemistry) H Huanting Wang (Department of Chemical and Biological Engineering)

Abstract

ABSTRACT Intermediate‐temperature electrochemical technologies offer a range of important advantages but require high‐performance and robust anhydrous proton exchange membranes. Herein, we demonstrate that confinement of phosphonium‐, imidazolium‐, and sulphonium‐based ionic liquids (ILs), within channels formed by stacked monolayers of boron nitride and graphene nanosheets functionalised with polyethyleneimine, provides robust and effective proton conductivity while suppressing bulk diffusion of the IL ions. We propose that the positively charged nanosheets might induce spatial ionic ordering, anchoring anions near the channel walls while concentrating protons and cations along the central region to establish parallel, continuous pathways for rapid proton transfer under anhydrous conditions. The resulting solid‐state composite membranes exhibit stable anhydrous proton conductivities of up to 10 −2 S cm − 1 at 240 ± 1°C, outperforming many existing IL‐based and polymer‐based systems. When integrated into hydrogen‐oxygen fuel cells, the [EMIM][NTf 2 ]‐based membrane enables a peak power density of 82 ± 5 mW cm −2 under anhydrous conditions at 240 ± 1°C and atmospheric pressure. In a broader context, this work presents a strategy for the design of membranes with properties tailored to a specific application, which can be achieved by tuning chemical structures of the confined IL and/or functional layers within the 2D channels.

Article Details

Volume / Issue Vol. 65, Issue 31
Published July 27, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

M

Mazin Al‐Alawi

School of Chemistry Monash University Clayton Victoria Australia

K

Kaiqiang He

Department of Chemical and Biological Engineering Monash University Clayton Victoria Australia

M

Mattia Belotti

School of Molecular and Life Sciences

F

Fanmengjing Wang

Department of Chemical and Biological Engineering Monash University Clayton Victoria Australia

J

Jiffin Oommen

School of Chemistry Monash University Clayton Victoria Australia

D

Douglas R. MacFarlane

School of Chemistry

H

Hoang‐Long Du

School of Chemistry Monash University Clayton Victoria Australia

A

Alexandr N. Simonov

School of Chemistry

H

Huanting Wang

Department of Chemical and Biological Engineering