Flexible, Biocompatible Supercapacitors Weaved From Layered Phyllosilicates and Zwitterions via Ionicity

M Md Roxy Islam (Department of Materials Science and Engineering University of Central Florida Orlando Florida USA) P Pritha Sarkar (Department of Materials Science and Engineering University of Central Florida Orlando Florida USA) T Tanmay Sarkar Akash (Department of Mechanical Engineering University of Maryland College Park Maryland USA) A Amanda Gabriela Bernard (Department of Materials Science and Engineering University of Central Florida Orlando Florida USA) S Siddhartha Das J Josh Marsh (Centre For Industrial Rheology Hampshire UK) N Neil Cunningham (Centre For Industrial Rheology Hampshire UK) G Gernot Rother (Neutron Scattering Division, Oak Ridge National Laboratory 1 , Oak Ridge, Tennessee 37831,) K Kausik Mukhopadhyay (Department of Materials Science and Engineering University of Central Florida Orlando Florida USA)

Abstract

ABSTRACT Phyllosilicates, for example, bentonite clay, are among the most abundant natural minerals, yet their brittleness and poor conductivity have limited their use in energy storage applications, typically requiring harmful solvents and synthetic binders to form functional membranes. Here, we report a polymer‐free, aqueous‐based approach in which betaine, a naturally occurring zwitterion, is intercalated into bentonite clay galleries through ionic interactions between its cationic trimethylammonium group and the negatively charged clay surface. This intercalation bridges the clay galleries, creating ion‐conductive pathways within free‐standing, mechanically robust membranes, as confirmed by molecular dynamics simulations, rheo‐impedance, and electrochemical impedance spectroscopy. Incorporation of transition‐metal ions (Fe 3 + , Mn 2 + ) introduces redox‐active sites that contribute to pseudocapacitive charge storage. The resulting membranes function as both electrodes (113 mAh/g vs. NMC811) and separators in all‐clay supercapacitor devices, delivering an energy density of 158 mWh/cm 3 and a power density of 5688 mW/cm 3 , with ∼75% capacitance retention after 30000 cycles. The devices are biocompatible and can power LEDs up to 2.2 V after brief charging. We show, for the first time, that zwitterions and clay provide a simple, scalable, and sustainable route to biocompatible, flexible supercapacitors for low‐power applications requiring mechanical flexibility and material sustainability.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 20, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

M

Md Roxy Islam

Department of Materials Science and Engineering University of Central Florida Orlando Florida USA

P

Pritha Sarkar

Department of Materials Science and Engineering University of Central Florida Orlando Florida USA

T

Tanmay Sarkar Akash

Department of Mechanical Engineering University of Maryland College Park Maryland USA

A

Amanda Gabriela Bernard

Department of Materials Science and Engineering University of Central Florida Orlando Florida USA

S

Siddhartha Das

J

Josh Marsh

Centre For Industrial Rheology Hampshire UK

N

Neil Cunningham

Centre For Industrial Rheology Hampshire UK

G

Gernot Rother

Neutron Scattering Division, Oak Ridge National Laboratory 1 , Oak Ridge, Tennessee 37831,

K

Kausik Mukhopadhyay

Department of Materials Science and Engineering University of Central Florida Orlando Florida USA