Jianguo Li, Youzhong Dong, Xin Wang, Yunbo Li, Qinghua Fan, Jiantie Xu, Haijiao Xie, Quan Kuang, Yanming Zhao
Irreversible active sodium loss (ASL) is widely regarded as a pivotal factor influencing the cycle life and energy density of sodium-ion full cells. Introducing practical electrocatalyst-driven compensation strategies for ASL and other multiple benefits in sodium-ion batteries (SIBs) is a tireless pursuit of researchers. Herein, Pd atoms were used to catalytically drive the decomposition of Na 2 O to compensate for ASL in Na 3 (Mn 0.8 Fe 0.2 ) 2 (PO 4 )(P 2 O 7 )//hard carbon (NMFPP//HC) pouch cells. This compensation strategy not only replenished the sodium inventory loss caused by SEI and Mn 2+ shuttle effect but also constructed a NaF-rich rigid CEI layer. The dissolution and shuttling of Mn 2+ can be significantly inhibited by this kind of rigid NaF-CEI layer. Finally, incorporating 8 wt % currently modified precondition with NMFPP cathode, the energy density of the corresponding pouch cell (NMFPP-PNO//HC) presents an essential improvement of 29% relative to the unmodified system. This study proposes a universal approach for ASL compensation and electrode stabilization in the design of high-performance SIBs.