AI Article Synopsis

  • Manganese/nickel-based layered transition metal oxides are being studied as effective cathodes for sodium-ion batteries due to their potential for higher energy density through both cationic and anionic redox reactions.
  • The introduction of Li-Mg cosubstituted P2-NaLiMgNiMnO, which has a honeycomb structure, aims to address the irreversible oxygen loss associated with the anionic redox reaction while demonstrating a competitive relationship with the Ni/Ni redox couple.
  • The study utilizes density functional theory and electrochemical measurements to investigate the stabilization role of Mg-O bonds and the impact of O 2p nonbonding states in enhancing the performance of these battery materials.

Article Abstract

Manganese/nickel-based layered transition metal oxides have caught the attention of studies as promising cathodes for sodium-ion batteries (SIBs). It is reported that utilizing both cationic and anionic redox reactions is a promising method for higher energy density cathodes. However, the anionic redox reaction comes at the expense of irreversible oxygen release. Hence, a Li-Mg cosubstituted P2-NaLiMgNiMnO material with a honeycomb-ordered superstructure was designed. The Ni/Ni redox couple and the anionic redox reaction are proven to have a competitive relationship. Density functional theory calculations reveal the effect of O 2p nonbonding states from Li and prove that Mg-O bonds can stabilize the Ni-O e states. electrochemical impedance spectroscopy measurements and galvanostatic charging/discharging derived d/d, representing resistance changes with time, are obtained to reveal the mechanism of the anionic redox reaction. This study presents the effect and mechanism of the O 2p nonbonding state and Mg-O bonds of manganese/nickel-based layered oxides.

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Source
http://dx.doi.org/10.1021/acs.nanolett.4c03358DOI Listing

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