Abstract
Solid polymer electrolytes (SPEs) offer a promising pathway toward safer, higher-energy-density lithium metal batteries, yet their room-temperature ionic conductivity remains limited by the strong coupling between Li+ transport and polymer segmental motion. Here, we reveal the intrinsic solvation chemistry in poly(ethylene oxide) (PEO)-based electrolytes using enhanced metadynamics sampling combined with 7Li nuclear magnetic resonance spectroscopy. Rigid cage-like solvation structures impose a key thermodynamic constraint on Li+ mobility. By contrast, targeted salt and additive engineering enables the construction of a labile semi-cage solvation structure that markedly enhances ion transport. At a Li: ether oxygen (EO) ratio of 0.10, Li+ transitions from tightly bound PEO cages to semi-cage structures by overcoming a moderate activation barrier of 19.88 kJ mol−1. As Li+-EO coordination is weakened through competitive coordination with anions and additives, the ionic conductivity increases from 9.57 × 10−3 to 2.91 × 10−2 mS cm−1 at 30°C. Furthermore, tuning the donor number of solvent additives reveals that intermediate donor strength promotes rapid ligand exchange within semi-cage structures, thereby accelerating local segmental relaxation through structural diffusion. This work establishes labile semi-cage solvation as a rational design principle beyond conventional plasticization strategies for optimizing the transport properties of next-generation SPEs.
| Original language | English |
|---|---|
| Journal | Advanced Energy Materials |
| DOIs | |
| State | Accepted/In press - 2026 |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 7 Affordable and Clean Energy
Keywords
- additive engineering
- ion transport
- metadynamics simulations
- semi-cage solvation structures
- solid polymer electrolytes
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