Nitrile-Ether Intramolecular Hybridization Enables Fast-Charging and Wide-Temperature Lithium-Ion Batteries.
basic_science · Level V
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- Record sourced from PubMed, PMID 42616402.
- Also identified by DOI 10.1021/acs.nanolett.6c02574.
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Abstract
Acetonitrile-based electrolytes offer excellent bulk transport for high-rate lithium-ion batteries but suffer from poor reductive stability and interfacial incompatibility. Here, we propose an intramolecular hybridization strategy using 3-ethoxypropionitrile (EPN) as an ideal solvent. Incorporation of an ether moiety into the nitrile backbone modulates charge distribution and enhances reductive stability, while steric hindrance promotes an anion-enriched weak-solvation structure. The integrated functional groups also impart amphiphilicity to the solvent, improving wettability toward both the separator and electrodes. This tailored molecular environment facilitates the formation of ultrathin, inorganic-rich interphases on both electrodes, enhancing interfacial stability and ion-transport kinetics. Consequently, EPN-based electrolytes enable 10 C fast-charging and stable operation from -20 to 55 °C. Notably, practical 1 Ah Graphite||LiFePO4 pouch cells retain 83.2% capacity after 1000 cycles at 1 C and 88.6% after 500 cycles at 3 C, demonstrating the promise of molecularly engineered nitrile electrolytes for fast-charging batteries.