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 (Fe3+, Mn2+) 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/cm3 and a power density of 5688 mW/cm3, 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.
| Original language | English |
|---|---|
| Journal | Angewandte Chemie - International Edition |
| DOIs | |
| State | Accepted/In press - 2026 |
Funding
We acknowledge a research assistantship for RI and funding from DHS‐FEMA for KM (grant #EMW‐2021‐FP00567); the UCF Materials Characterization Facility (MCF), the University of Florida Research and Scholarship Center (UF‐RSC), and the Florida Industrial and Phosphate Institute for materials characterization. We want to thank Aditya Maan and Dr. Kaitlyn Crawford for their help with the texture analyzer. We also acknowledge the NSF MRI grant (ECCS‐1726636) for XPS analyses. Tanmay Sarkar Akash and Siddhartha Das gratefully acknowledge the Zaratan High‐Performance Computing cluster at the University of Maryland for providing the computational resources necessary to perform the DFT and Reactive MD simulations. A portion of the SAXS analyses was performed at the Spallation Neutron Source, a DOE Office of Science User Facility operated by Oak Ridge National Laboratory. We acknowledge Dr. Jong Keum for SAXS data measurement on the Xeuss 3.0 SAXS instrument via the Oak Ridge National Laboratory (ORNL) instrumentation pool. Dr. Jong Keum is supported by both the Center for Nanophase Materials Sciences (CNMS) and the Neutron Scattering Division (NSD), which are US Department of Energy, Office of Science User Facilities. Figures 1a and 4h ; Figures S2a, S4b, S26, S42 , and S43 were created using BioRender.com.
Keywords
- biocompatible
- ion-conductivity
- membranes
- supercapacitor
- zwitterion
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