Tingting Liu, Shengjie Xia, Kaiyong Tuo, Jiamin Fu, Junwu Sang, Suze Liang, Zhimin Zhou, Mengfei Zhu, Mingfeng Wei, Ziqing Wang, Luting Xie, Hongrui Huang, Jian Peng, Qiaobao Zhang, Xueliang Sun, Changhong Wang
Li5FeO4 is a prelithiation additive for compensating irreversible lithium loss in lithium-ion batteries, yet its function and mechanism in all-solid-state batteries (ASSBs) remain largely unexplored. Here, we demonstrate that nanosized Li5FeO4 serves as an effective cathode prelithiation additive in halide-based ASSBs. Through mechanochemical milling, pristine micrometer-sized Li5FeO4 is reduced to approximately 500 nm, leading to a significant enhancement in delithiation capacity from 43.1 to 752.5 mAh g‒1. This enhancement arises from nanosizing-induced local structural disorder and improved electronic conductivity. Mechanistic analyses reveal a unique three-stage delithiation pathway in the all-solid-state reaction environment, involving low-potential lattice oxygen oxidation, coupled oxygen/iron oxidation, and lattice oxygen oxidation accompanied by iron reduction. Guided by this mechanism, nanosized Li5FeO4 replenishes lithium consumed by silicon anodes, enabling room-temperature silicon-based ASSBs with 70% capacity retention over 1000 cycles and stable operation from -10°C to 55°C. Moreover, a silicon-based all-solid-state pouch cell delivers an energy density of 473.3 Wh kg‒1 (calculated on electrode mass) and retains 86.1% capacity after 500 cycles under 24.5 MPa. This work reveals the distinct delithiation pathway of Li5FeO4 in an all-solid-state reaction environment, thus providing mechanistic guidance for developing efficient prelithiation strategies for high-energy-density ASSBs.