Abstract
Decoupling Li+ transport from polymer segmental dynamics is crucial for enhancing ionic conductivity (σ) and transference number (t+) in solid polymer electrolytes (SPEs). Herein, by studying four ether-based SPEs with varying oxygen density, we identify a transition from polymer relaxation-limited ion transport in poly(ethylene oxide) (PEO) to ion hopping-dominant transport in poly(tetrahydrofuran) (PTHF), poly(1,3-dioxolane) (PDOL), and poly(trioxymethylene) (PTOM). Molecular dynamics simulations and solid-state 7Li nuclear magnetic resonance reveal origins of the transition. In PTHF, weak solvation with lithium bond characteristics contributes to a less-shielded Li+ environment, while in PDOL and PTOM, the discontinuous coordination (DC) structure and multi-chain binding are pivotal. The presence of DC structures is experimentally confirmed by in situ attenuated total reflection Fourier transform infrared spectroscopy and supported by quantum chemistry calculations. As a result, PDOL and PTOM exhibit t+ values exceeding 0.5 and enhanced σ values of 4.3 × 10−3 and 8.5 × 10−3 S cm−1 at 373 K, respectively. The Li/SPEs/LiFePO4 cell with ex situ-prepared PDOL achieves a superior capacity retention of 90.8% after 50 cycles. This work underscores the significance of functional group spacing in tuning the transport mechanisms and demonstrates how the decoupling strategy can guide the bottom-up design of advanced SPEs.
| Original language | English |
|---|---|
| Pages (from-to) | 1616-1629 |
| Number of pages | 14 |
| Journal | Energy and Environmental Science |
| Volume | 19 |
| Issue number | 5 |
| DOIs | |
| State | Published - 10 Mar 2026 |
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This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 7 Affordable and Clean Energy
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