Abstract
O3-NaNi1/3Fe1/3Mn1/3O2 cathodes are promising candidates for sodium-ion batteries benefited of the high theoretical capacity. However, the inherently poor electronic conductivity limits rate performance and aggravates O3-P3 phase transition, further weakens phase transition reversibility and results in structural degradation. Herein, a localized electronic regulation strategy inspired by yttrium iron garnet (YIG) is employed to address the issue of sluggish electron transport. Specifically, Y3+ ions are utilized to partially substitute Ni2+ to rearrange the electronic configuration of Fe 3d orbitals, which could trigger a transition from high-spin state (t2g3eg2) to low-spin state (t2g5eg0) as well as narrow the band gap due to the asymmetric splitting of the t2g∗ band near the Fermi level. Moreover, the large ionic radius tends to construct a concentration gradient of Y3+, thereby generating a long-range built-in electric field. Benefiting from the improved electrical conductivity, Y0.25-NFM performs 64 mAh g−1 reversible capacity at 20 C, also the enhanced reversible phase transitions assist Y0.25-NFM maintains 80.9% of initial capacity at 1 C for 500 cycles (44.7% for baseline NFM). The thorough understanding of the dual regulatory effects for Y3+ doping on short & long-range electronic interactions provides a novel strategy to construct outstanding layered oxide cathodes for advanced SIBs.
| Original language | English |
|---|---|
| Article number | e18348 |
| Journal | Advanced Functional Materials |
| Volume | 36 |
| Issue number | 19 |
| DOIs | |
| State | Published - 5 Mar 2026 |
| Externally published | Yes |
Keywords
- O3-type layered cathodes
- Y-Fe electronic coupling
- built-in electric field
- sodium-ion batteries
- yttrium doping
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