AI Article Synopsis

  • NaFeMn(PO)(PO) shows great potential for commercial use due to its higher energy density than NaFe(PO)(PO), but faces issues like impurities and sodium movement problems.
  • Researchers investigated these failure mechanisms and found that they stem mostly from element segregation, Na/Mn defects, and blocked sodium channels.
  • They proposed a solution using nonhomogeneous Mg doping, which improved the material's performance significantly, resulting in a new cathode with better voltage, energy density, and a much longer lifespan for sodium-ion batteries.

Article Abstract

NaFeMn(PO)(PO) is considered a promising candidate for commercial-scale applications due to its significantly improved energy density compared to NaFe(PO)(PO). However, challenges such as intractable impurities, voltage hysteresis/decay, and sluggish Na kinetics hinder their practical application. In this study, failure mechanisms of NaFeMn(PO)(PO) are intensively investigated and demystified. It is found that the issues of this material are mainly caused by surface element segregation, Na/Mn antisite defects, and the closure of Na channels. To address these problems, a nonhomogeneous Mg doping engineering strategy is proposed, which effectively eliminates inert impurity phases, decreases the concentration of Na/Mn antisite defects, reactivates the anomalous Jahn-Teller behavior, and inhibits Mn dissolution. The synthesized ternary polyanionic cathode material, NaFeMnMg(PO)(PO)@C-N, demonstrates significant improvements, featuring an average operating voltage of approximately 3.5 V, an energy density of 430 Wh kg at 0.2C, and an ultralong cycle life (>12,000 cycles). This work highlights the nonhomogeneous Mg doping engineering strategy and provides a promising approach for developing cathode materials with high energy density for commercial-scale sodium-ion batteries.

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http://dx.doi.org/10.1021/acsnano.4c18614DOI Listing

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Article Synopsis
  • NaFeMn(PO)(PO) shows great potential for commercial use due to its higher energy density than NaFe(PO)(PO), but faces issues like impurities and sodium movement problems.
  • Researchers investigated these failure mechanisms and found that they stem mostly from element segregation, Na/Mn defects, and blocked sodium channels.
  • They proposed a solution using nonhomogeneous Mg doping, which improved the material's performance significantly, resulting in a new cathode with better voltage, energy density, and a much longer lifespan for sodium-ion batteries.
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