Abstract
Nitrile-based solvents are highly promising candidates for advanced high-energy Li-metal batteries (LMBs); however, their practical application is hindered by poor interfacial compatibility with Li-metal anodes. Herein, a molecular design strategy involving the incorporation of oxygen into an organic nitrile solvent is proposed, which significantly enhances the compatibility of the modified solvent with Li-metal anodes and enables the formulation of a non-flammable electrolyte with improved performance for LMBs. The results demonstrate that this oxygen incorporation strategy not only enhances Li⁺ transport and interfacial reaction kinetics but also facilitates the formation of a thin and uniform solid electrolyte interphase (SEI). These improvements greatly boost the rate capability and cycling stability of LMBs, achieving a capacity retention of 81.6% after 1800 cycles at a high rate of 10 C. This work highlights the critical role of solvent molecular design in improving interfacial stability and ion transport in LMBs, offering a versatile and scalable strategy for the development of next-generation nitrile-based electrolytes for high-performance LMBs.
| Original language | English |
|---|---|
| Article number | e11420 |
| Journal | Small |
| Volume | 22 |
| Issue number | 2 |
| DOIs | |
| State | Published - 8 Jan 2026 |
| Externally published | Yes |
Keywords
- lithium metal batteries
- nitrile-based electrolytes
- oxygen incorporation
- solid–electrolyte interphase
- solvation structure
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