Layered transition-metal (TM) oxide cathodes have attracted growing attention in sodium-ion batteries (SIBs). However, their practical implementation is plagued by Jahn-Teller distortion and irreversible cation migration, leading to severe voltage decay and structure instability. Herein, O3-NaKNiFeMnTiO (KT-NFM) is reported as an ultrastable cathode material via multisite substitution with rigid KO pillars and flexible TiO octahedra. The K pillars induce contracted TMO slabs and their strong Coulombic repulsion to inhibit Ni/Fe migration; and Ti incorporation reinforces the hybridization of Ni(3deg*)-O(2p) to mitigate the undesired O3-O'3 phase transition. These enable the reversible redox of Ni+↔Ni + and Fe+↔Fe+ for 138.6 mAh g and ultrastable cycles with >90% capacity retention after 2000 cycles in a pouch cell of KT-NFM||hard carbon. This will provide insights into the design of ultrastable layered cathode materials of sodium-ion batteries and beyond.
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http://dx.doi.org/10.1002/adma.202311523 | DOI Listing |
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