2026/02/13 by Jianxing Liu, Tongzhen Wang, Jie Yang +5 · 1 voice
Engineering · Materials Science · #Advanced Battery Materials and Technologies #Advancements in Battery Materials #Thermal Expansion and Ionic Conductivity
paper · doi:10.1007/s40820-026-02076-0
openalex publication_date 2026/02/13 · openalex created_date 2026/02/14 · openalex updated_date 2026/07/30
Abstract Nickel-rich nickel phosphide (Ni 2 P) has emerged as a promising sodium-ion battery anode owing to its high theoretical capacity and intrinsic electronic conductivity, yet its charge storage chemistry remains controversial and is often oversimplified as a conversion reaction. Herein, we design a freestanding Ni 2 P composite electrode composed of ultrasmall Ni 2 P nanocrystals embedded within a phosphorus-doped, graphene-like porous carbon matrix. Comprehensive in-situ and ex-situ analyses unequivocally demonstrate an interstitial solid-solution mechanism, wherein Na + ions reversibly occupy lattice interstitials via (111)-oriented interplanar channels, inducing reversible lattice breathing without phase transformation. This bulk intercalation process is synergistically coupled with a substantial pseudocapacitive contribution, establishing a cooperative dual-mode storage mechanism. Benefiting from this solid-solution–capacitive chemistry, the electrode delivers a high reversible capacity (≈560 mAh g −1 ), outstanding rate capability (135 mAh g −1 at 10 A g −1 ), and exceptional long-term stability (263 mAh g −1 after 2000 cycles). When paired with a Na 3 V 2 (PO 4 ) 3 @C cathode, the full cell achieves a high-energy density of 245 Wh kg −1 . This work establishes solid-solution–capacitive coupling as a general paradigm for designing high-rate and durable sodium-ion battery anodes.