APTES Functionalized Cellulose Nanofiber Gel‐Polymer Electrolytes for Lithium and Sodium‐Ion Batteries

ABSTRACT Cellulose nanofibers (CNFs) are emerging as sustainable polymer matrices for gel‐polymer electrolytes; however, their ion‐transport properties are limited by surface‐chemistry‐derived interactions. In this work, we demonstrate that a single, time‐controlled APTES functionalization step provides an effective and scalable route to enhance the ionic transport characteristics of CNF‐based gel–polymer electrolytes. The pristine and functionalized CNF membranes are imbibed with PF 6 − ‐based carbonate liquid electrolytes for both lithium (Li + )‐ and sodium (Na + ) systems. By optimizing the functionalization duration, the ionic conductivity increases from ≈0.07 to 0.60 mS cm −1 (Li + ) and from ≈0.1 to 2.02 mS cm −1 (Na + ), accompanied by an increased apparent cation transference number, while preserving the fibrous morphology, mechanical integrity, and thermal stability. In LiFePO 4 || Li half‐cells, the optimized A‐CNF electrolyte delivers stable rate capability and long‐term cycling beyond 1000 cycles, with reversible non‐monotonic capacity evolution associated with polarization relaxation, as supported by overpotential analysis and d Q /d V measurements. The A‐CNF electrolyte also enables efficient Na + transport in Na 3 V 2 (PO 4 ) 3 || Na half‐cells, showing minimal capacity loss (<5%) and narrow voltage hysteresis from 0.1C to 1C. These results establish single‐step APTES‐modified CNFs as a versatile and sustainable gel–polymer electrolyte platform for both lithium‐ and sodium‐ion batteries.

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Small
Published
2026-09-18
DOI
https://doi.org/10.1002/smll.75709
Primary Topic
Advanced Battery Materials and Technologies
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article
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article

APTES Functionalized Cellulose Nanofiber Gel‐Polymer Electrolytes for Lithium and Sodium‐Ion Batteries

A. Venimadhav, Donghyuck Park, Amanda Ellis, Robert Kerr et al.
Small
Advanced Battery Materials and Technologies
article

APTES Functionalized Cellulose Nanofiber Gel‐Polymer Electrolytes for Lithium and Sodium‐Ion Batteries

A. Venimadhav, Donghyuck Park, Amanda Ellis, Robert Kerr, Ajit Kumar, Swambabu Varanasi, S. Sureshkumar, Subham Kumar Shaw
article en

Abstract

ABSTRACT Cellulose nanofibers (CNFs) are emerging as sustainable polymer matrices for gel‐polymer electrolytes; however, their ion‐transport properties are limited by surface‐chemistry‐derived interactions. In this work, we demonstrate that a single, time‐controlled APTES functionalization step provides an effective and scalable route to enhance the ionic transport characteristics of CNF‐based gel–polymer electrolytes. The pristine and functionalized CNF membranes are imbibed with PF 6 − ‐based carbonate liquid electrolytes for both lithium (Li + )‐ and sodium (Na + ) systems. By optimizing the functionalization duration, the ionic conductivity increases from ≈0.07 to 0.60 mS cm −1 (Li + ) and from ≈0.1 to 2.02 mS cm −1 (Na + ), accompanied by an increased apparent cation transference number, while preserving the fibrous morphology, mechanical integrity, and thermal stability. In LiFePO 4 || Li half‐cells, the optimized A‐CNF electrolyte delivers stable rate capability and long‐term cycling beyond 1000 cycles, with reversible non‐monotonic capacity evolution associated with polarization relaxation, as supported by overpotential analysis and d Q /d V measurements. The A‐CNF electrolyte also enables efficient Na + transport in Na 3 V 2 (PO 4 ) 3 || Na half‐cells, showing minimal capacity loss (<5%) and narrow voltage hysteresis from 0.1C to 1C. These results establish single‐step APTES‐modified CNFs as a versatile and sustainable gel–polymer electrolyte platform for both lithium‐ and sodium‐ion batteries.

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Indian Institute of Technology Kharagpur (IN), Deakin University (AU), The University of Melbourne (AU)
Responsible consumption and production
Openalex Percentile: Top 21%
Advanced Battery Materials and Technologies
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