“Electronic Sponge” Strategy Enables Polyether Electrolytes for High-Voltage and Fast-Charging Quasi-Solid-State Batteries
Lifen Zhang, Song Duan, Bingsen Qin, Zongtao Lu, Hongyao Wang, Peng Wang, Zhenghao Li, Zhiyang Yu, Wei Yan, Jiujun Zhang, Yun ZhengAbstract
Polyether electrolytes are promising for lithium (Li) metal batteries yet suffer from insufficient Li+ conductivity, low oxidative thresholds, and unstable electrolyte–electrode interphases under high-voltage and fast-charging conditions. Herein, inspired by a natural sponge’s water absorption and release, we develop a unique “electronic sponge” (ES) strategy for bidirectional electron-transfer regulation. The ES withdraws electron density from ether oxygens to weaken Li+–oxygen coordination and stabilize lone-pair electrons while donating electrons to Li-salt anions to promote anion-derived decomposition toward robust LiF-rich solid electrolyte interphase (SEI)/cathode electrolyte interphase (CEI). This straightforward strategy synergistically improves Li+ transport, oxidative stability, and interphase stability. The resulting electrolyte achieves an ionic conductivity of 1.61 mS cm–1 at 25 °C, a Li+ transference number of 0.84, and an extended electrochemical stability window of 5.2 V. Li∥Li symmetric cells cycle stably for over 1000 h at 0.5 mA cm–2. Notably, Li∥LiNi0.8Co0.1Mn0.1O2 cells retain 82.5% capacity after 300 cycles at 4.6 V and sustain 500 cycles with ∼100% Coulombic efficiency and 82.6% capacity retention at 4.5 V and 5C. This work pioneers a universal electron regulation paradigm for designing advanced polyether electrolytes and stable interphases toward high-voltage, fast-charging quasi-solid-state batteries.