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Updated: Sep 24, 2026

Solid-state Graft Copolymer Electrolytes for Lithium Battery Applications
Published on: August 12, 2013
Plasma chemistry enables compositionally tunable artificial SEI for solid polymer electrolyte sodium batteries
Shwetha Prakash1, Pratahdeep Gogoi1, Mayuresh Janpandit1
1Department of Chemistry, The State University of New York at Buffalo Buffalo New York 14260 USA yuguangl@buffalo.edu.
Abstract:
Sodium metal anodes paired with solid polymer electrolytes offer a compelling route to safe, high-energy-density batteries, yet uncontrolled interfacial reactivity and dendrite formation remain critical barriers. Here, CO2-mediated non-thermal plasma technology is used to engineer ex situ artificial solid electrolyte interphases (ASEIs) on sodium metal anodes using fluorinated precursors - NaF, FEC, and PFHxA - spanning a systematic range of inorganic-to-organic fluorine character. Gas-phase characterization by OES, FTIR, and GC-MS reveals that each precursor generates distinct reactive intermediates in the plasma, while XPS confirms precursor-dependent divergence in interphase fluorine speciation: NaF yields an inorganic-rich NaF/organic-carbon hybrid, whereas PFHxA produces a fluoropolymer-dominated film. This compositional divergence directly governs performance - the NaF-derived ASEI delivers the lowest interfacial charge-transfer resistance, sustains symmetric cell cycling beyond 1800 h (18-fold improvement over bare sodium), and maintains stable half-cell operation beyond 3000 cycles at 3C. These results establish that optimal ASEI design requires a deliberate balance of inorganic fluoride for Na+ transport and organic carbon functionality for SPE interfacial compatibility, and demonstrate CO2-mediated NTP as a versatile, ambient-condition platform for rational interphase engineering in solid-state alkali metal batteries.
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