Modulating Ionic Transport in PEO-based Composite Polymer Electrolytes using a Sulfonate-functionalized 3D Metal-organic Framework for Solid-state Supercapacitor Devices

Abstract

The growing demand for safe, high-power, and long-cycle energy storage devices has accelerated the development of all-solid-state supercapacitors. However, limited ionic conductivity of polymer electrolytes remain the key challenges. Herein, we report the fabrication of poly(ethylene oxide) (PEO)-LiClO4 composite polymer electrolytes (CPEs) using a sulfonate-functionalized three-dimensional Metal-organic Framework (MOF) (BITSP) as an active additive. Out of all the synthesized CPEs, the CPE, PEO-10% BITSP-LiClO4, exhibits a high ionic conductivity of 6.8 × 10 -4 S/cm at room temperature and 1.4 × 10 -3 S/cm at 50 °C, a near-unity ionic transference number of 0.996 at room temperature, and an electrochemical stability window of 2.02 V. The CPE, PEO-10 % BITSP-LiClO4, is further assembled into an all-solid-state supercapacitor with a configuration of Cu|AC|PEO-10% BITSP-LiClO4|AC|Cu, which delivers a high specific capacitance ( 185 Fg -1 at 2V) with 99% coulombic efficiency at 1V and a capacitance retention of 75.3 % after 10,000 Galvanostatic chargedischarge (GCD) cycles. The role of BITSP in CPEs in ionic conduction is validated using DSC, XPS and DFT studies where it is infered that the presence of heteroatoms such as free sulfonate oxygen and imine nitrogen sites in BITSP provide interaction sites for the Li + ions to facilitate the ionic transport while the Cd(II) centre in BITSP caters the dual role of capturing the counter anion of the Li salt and interacting with PEO thereby creating amorphous domains. Further, the conductivity and capacitive nature of PEO-10% BITSP-LiClO4 are compared with PEO-x% BITSP-LiTFSI to verify the cooperative effect of the chemical features present in BITSP, which results in enhancing the electrochemical performance of CPE, PEO-10% BITSP-LiClO4.

Supplementary files

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Article information

Article type
Paper
Submitted
08 Mar 2026
Accepted
17 Jun 2026
First published
18 Jun 2026

J. Mater. Chem. A, 2026, Accepted Manuscript

Modulating Ionic Transport in PEO-based Composite Polymer Electrolytes using a Sulfonate-functionalized 3D Metal-organic Framework for Solid-state Supercapacitor Devices

P. BHARDWAJ, N. ., H. Bhambri, S. Mandal, A. Dalvi and M. Sarkar, J. Mater. Chem. A, 2026, Accepted Manuscript , DOI: 10.1039/D6TA02012G

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