AI Article Synopsis

  • Sodium-ion batteries (SIBs) are gaining attention for renewable energy storage due to their low cost and eco-friendly properties, with sodium layer oxides being a key component due to their high capacity and manufacturing compatibility.
  • A new high entropy doped layered oxide called HE-CFMO is developed, which enhances cycling stability by optimizing stress distribution and interlayer spacing, while also incorporating Li doping to further stabilize the layered structure during use.
  • The HE-CFMO cathode shows impressive performance, achieving 95% capacity retention after 300 cycles, highlighting its potential for commercial application and reducing environmental impacts.

Article Abstract

Sodium-ion batteries (SIBs) with low cost and environmentally friendly features have recently attracted significant attention for renewable energy storage. Sodium layer oxides stand out as a type of promising cathode material for SIBs owing to their high capacity, good rate performance, and high compatibility for manufacturing. However, the poor cycling stability of layer oxide cathodes due to structure distortion greatly impacts their practical applications. Herein, a high entropy doped Cu, Fe, and Mn-based layered oxide (HE-CFMO), NaLiMgCuFeMnTiO for high-performance SIBs, is designed. The HE-CFMO cathode possesses high-entropy transition metal (TM) layers with a homogeneous stress distribution, providing a moderated interlayer spacing to maintain the structure stability and enhance Na ion diffusion. In addition, Li doping in TM layers increases the Mn valence state, which effectively suppresses John-Teller effect, thus stabilizing the layered structure during cycling. Furthermore, the use of nontoxic and low-cost raw materials benefits future commercialization and reduces the risk of environmental pollution. As a result, the HE-CFMO cathode exhibits a super cycling performance with a 95% capacity retention after 300 cycles. This work provides a promising strategy to improve the structure stability and reaction kinetics of cathode materials for SIBs.

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Source
http://dx.doi.org/10.1002/adma.202410857DOI Listing

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