3.8 Article

P2-type layered high-entropy oxides as sodium-ion cathode materials

Journal

MATERIALS FUTURES
Volume 1, Issue 3, Pages -

Publisher

IOP Publishing Ltd
DOI: 10.1088/2752-5724/ac8ab9

Keywords

P2-type layered cathode; high-entropy oxides; sodium-ion battery; gassing behavior; manganese leaching

Funding

  1. China Scholarship Council (CSC)
  2. Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) [390874152]
  3. Federal Ministry of Education and Research (Bundesministerium fur Bildung und Forschung, BMBF) [03XP0254D]
  4. Helmholtz Association (DigiBat project)
  5. German Research Foundation [HA 1344/43-1]
  6. EnABLES project - European Union [730957]
  7. EPISTORE project - European Union [101017709]
  8. Kera-Solar project (Carl Zeiss Foundation)

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The high-entropy strategy is promising for improving the electrochemical performance of P2 layered oxide cathodes for advanced sodium-ion battery applications. It reduces the structural transformation and metal dissolution, resulting in enhanced stability and capacity retention.
P2-type layered oxides with the general Na-deficient composition NaxTMO2 (x < 1, TM: transition metal) are a promising class of cathode materials for sodium-ion batteries. The open Na+ transport pathways present in the structure lead to low diffusion barriers and enable high charge/discharge rates. However, a phase transition from P2 to O2 structure occurring above 4.2 V and metal dissolution at low potentials upon discharge results in rapid capacity degradation. In this work, we demonstrate the positive effect of configurational entropy on the stability of the crystal structure during battery operation. Three different compositions of layered P2-type oxides were synthesized by solid-state chemistry, Na-0.67(Mn0.55Ni0.21Co0.24)O-2, Na-0.67(Mn0.45Ni0.18Co0.24Ti0.1Mg0.03)O-2 and Na-0.67(Mn0.45Ni0.18Co0.18Ti0.1Mg0.03Al0.04Fe0.02)O-2 with low, medium and high configurational entropy, respectively. The high-entropy cathode material shows lower structural transformation and Mn dissolution upon cycling in a wide voltage range from 1.5 to 4.6 V. Advanced operando techniques and post-mortem analysis were used to probe the underlying reaction mechanism thoroughly. Overall, the high-entropy strategy is a promising route for improving the electrochemical performance of P2 layered oxide cathodes for advanced sodium-ion battery applications.

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