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Interfacial borate engineering enables strain-regulated and gas-stable O3-type layered cathodes for durable sodium-ion batteries

  • Hangda Chen
  • , Muhammad Ishaq
  • , Huihua Zhang
  • , Jie Wang
  • , Wen Tang
  • , Jianxiao Shen
  • , Wei Xu
  • , Zhao Zhang
  • , Haiying Che
  • , Zi Feng Ma*
  • *Corresponding author for this work
  • Shanghai Jiao Tong University
  • Zhejiang Natrium Energy Co. Ltd.

Research output: Contribution to journalArticlepeer-review

Abstract

The practical deployment of O3-type layered oxide cathodes for sodium-ion batteries is hindered by structural degradation, interfacial side reactions, and high-voltage gas evolution. Herein, we report an interfacial borate engineering strategy that constructs a conformal borate layer on Na0.98Ca0.02Ni1/3Fe1/3Mn1/3O2, inducing surface densification and Ca2+ enrichment to form a gradient-stabilized structure. This architecture strengthens the structural pinning effect, synergistically regulating lattice strain and passivating reactive sites. Consequently, the modified NFM@B cathode suppresses c-axis expansion and intragranular cracking, while nearly eliminating O₂ release and markedly reducing CO2 evolution at 4.5 V. Electrochemically, NFM@B delivers 139.3 mAh g−1 at 0.2C, maintains a higher average voltage of 3.08 V at 1C, and achieves 44.6% greater energy retention after 350 cycles. The borate interface also enhances moisture tolerance. Practical viability is validated in 1 Ah pouch cells and all-solid-state batteries. This work highlights interfacial strain regulation and surface passivation as an effective pathway for durable high-voltage sodium-ion batteries.

Original languageEnglish
Article number108199
JournalElectrochemistry Communications
Volume189
DOIs
Publication statusPublished - Aug 2026
Externally publishedYes

Keywords

  • Borate coating
  • Interfacial stability
  • Layered oxides
  • Sodium-ion batteries
  • Strain regulation

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