Peptide‐Induced Ferroelectricity in Charge‐Transfer Supramolecular Materials

J James V. Passarelli (Department of Chemistry Northwestern University Evanston Illinois USA) Y Yang Yang C Cara S. Smith (Department of Biomedical Engineering) J Jing Hao D Dhwanit R. Dave (Center for Regenerative Nanomedicine Northwestern University 303 E. Superior Street, Chicago, Illinois 60611, United States) A Ashwin Narayanan (Department of Materials Science and Engineering Northwestern University Evanston Illinois USA) Z Zaida Álvarez (Center for Regenerative Nanomedicine, Northwestern University, 303 E. Superior Street, Chicago, Illinois 60611, United States) B Broderick K. Johnson (Department of Chemistry Northwestern University Evanston Illinois USA) K Kelly A. Marshall (The Ken & Ruth Davee Department of Neurology Feinberg School of Medicine Northwestern University Chicago Illinois USA) I Ivan Fithian (Department of Chemistry Northwestern University Evanston Illinois USA) H Hiroaki Sai R Ruomeng Qiu C Charlotte L. Stern L Liam C. Palmer E Evangelos Kiskinis (Center For Regenerative Nanomedicine Northwestern University Chicago Illinois USA) S Samuel I. Stupp

Abstract

ABSTRACT Organic ferroelectrics are of great interest in sustainable energy conversion, information storage, flexible electronics, and potential biomedical applications as soft implants, among many other applications. Despite their broad potential, the development of organic ferroelectrics has remained limited, with only a few known examples in solid‐state systems, primarily due to the lack of well‐established design strategies compared to inorganic systems. Bio‐inspired supramolecular chemistry offers a path to create functional nanostructures that are water‐processable and biocompatible. We report here on supramolecular charge transfer (CT) systems in which peptides are covalently linked to dyads of electron‐donating and electron‐accepting moieties, creating amphiphiles that self‐assemble into nanoscale ribbons in water. The peptide chirality‐induced symmetry breaking in these crystalline nanostructures not only results in second harmonic activity but also generates ferroelectric behavior across multiple CT systems, demonstrating a versatile supramolecular approach to the design of new organic ferroelectrics. Furthermore, culturing primary neuron cells on coatings of the ferroelectric materials promoted axonal growth and enhanced action potentials, indicating improved neuronal maturity facilitated by the polar structure of the ferroelectric nanomaterials. The supramolecular strategy used here holds promise to create new water‐processable ferroelectric biomaterials, opening avenues for innovative applications in cell charge transfer, neuronal axon growth, peptide symmetry breaking, self‐assembling peptides, supramolecular ferroelectrics, proliferation, and bioelectronics.

Article Details

Volume / Issue Vol. 38, Issue 11
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (16)

J

James V. Passarelli

Department of Chemistry Northwestern University Evanston Illinois USA

Y

Yang Yang

C

Cara S. Smith

Department of Biomedical Engineering

J

Jing Hao

D

Dhwanit R. Dave

Center for Regenerative Nanomedicine Northwestern University 303 E. Superior Street, Chicago, Illinois 60611, United States

A

Ashwin Narayanan

Department of Materials Science and Engineering Northwestern University Evanston Illinois USA

Z

Zaida Álvarez

Center for Regenerative Nanomedicine, Northwestern University, 303 E. Superior Street, Chicago, Illinois 60611, United States

B

Broderick K. Johnson

Department of Chemistry Northwestern University Evanston Illinois USA

K

Kelly A. Marshall

The Ken & Ruth Davee Department of Neurology Feinberg School of Medicine Northwestern University Chicago Illinois USA

I

Ivan Fithian

Department of Chemistry Northwestern University Evanston Illinois USA

H

Hiroaki Sai

R

Ruomeng Qiu

C

Charlotte L. Stern

L

Liam C. Palmer

E

Evangelos Kiskinis

Center For Regenerative Nanomedicine Northwestern University Chicago Illinois USA

S

Samuel I. Stupp