Ion transport through reconfigurable nanoparticle-surfactant stabilized droplet interface bilayers

X Xuefei Wu H Han Xue Z Zachary Fink (Polymer Science and Engineering Department, University of Massachusetts) Z Zhiqin Xia (Materials Sciences Division, Lawrence Berkeley National Laboratory) N Nivedina A. Sarma (Materials Sciences Division, Lawrence Berkeley National Laboratory) X Xuchen Gan (Polymer Science & Engineering Department, Conte Center for Polymer Research) J John Katsaras (Shull Wollan Center, Oak Ridge National Laboratory and University of Tennessee) P Peter Ercius (Molecular Foundry) B Behzad Rad (Molecular Foundry) B Brett A. Helms (Materials Sciences Division, Lawrence Berkeley National Laboratory, 1 Cyclotron Road, Berkeley, California 94720, United States) P Paul D. Ashby (Materials Sciences Division, Lawrence Berkeley National Laboratory) A Ahmad K. Omar (Materials Sciences Division, Lawrence Berkeley National Laboratory) C C. Patrick Collier (Center for Nanophase Materials Sciences, Oak Ridge National Laboratory) T Thomas P. Russell (Polymer Science & Engineering Department, Conte Center for Polymer Research)

Abstract

Despite their adaptability and mechanical stability, Pickering emulsions based on the interfacial assembly of colloidal particles have not found use in iontronics, since the dense interfacial packing of micron-sized particles precludes functional connectivity between two droplets. Here, we introduce a chemically reconfigurable droplet interface bilayer (DIB) platform based on the interfacial assembly of nanoparticle-surfactants (NPSs) that enables spontaneous or field-induced formation of ion-conducting nanochannels, eliminating the need of ionophores or nanochannel-forming proteins. These nanoscopic channels emerge from packing defects in the jammed interfacial assemblies of the charged NPSs and support size and charge selective, hysteretic ion transport governed by interfacial electrostatics and dimensional constraints. The NPS-DIBs show short-term and long-term plasticity, hallmarks of neuromorphic behavior, that are mediated by the structural and chemical design of the bilayer. These assemblies establish a versatile, chemically tunable platform that couples soft-matter mechanics with interfacial ionic functionality, offering a robust foundation for soft iontronic systems.

Article Details

Volume / Issue Vol. 123, Issue 8
Published February 24, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (14)

X

Xuefei Wu

H

Han Xue

Z

Zachary Fink

Polymer Science and Engineering Department, University of Massachusetts

Z

Zhiqin Xia

Materials Sciences Division, Lawrence Berkeley National Laboratory

N

Nivedina A. Sarma

Materials Sciences Division, Lawrence Berkeley National Laboratory

X

Xuchen Gan

Polymer Science & Engineering Department, Conte Center for Polymer Research

J

John Katsaras

Shull Wollan Center, Oak Ridge National Laboratory and University of Tennessee

P

Peter Ercius

Molecular Foundry

B

Behzad Rad

Molecular Foundry

B

Brett A. Helms

Materials Sciences Division, Lawrence Berkeley National Laboratory, 1 Cyclotron Road, Berkeley, California 94720, United States

P

Paul D. Ashby

Materials Sciences Division, Lawrence Berkeley National Laboratory

A

Ahmad K. Omar

Materials Sciences Division, Lawrence Berkeley National Laboratory

C

C. Patrick Collier

Center for Nanophase Materials Sciences, Oak Ridge National Laboratory

T

Thomas P. Russell

Polymer Science & Engineering Department, Conte Center for Polymer Research