Revealing High Na-Content P2-Type Layered Oxides as Advanced Sodium-Ion Cathodes.

J Am Chem Soc

Key Laboratory for Renewable Energy, Beijing Key Laboratory for New Energy Materials and Devices, Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China.

Published: March 2020

AI Article Synopsis

  • Scientists are studying special types of layered materials called Na-based oxides, which help improve sodium-ion batteries by allowing for different designs and chemical reactions.
  • They found that adding more sodium makes these materials stronger and better at storing energy, especially for the metal nickel.
  • Their research shows that these materials can work really well in batteries, lasting for over 3000 charging and discharging cycles without losing performance.

Article Abstract

Layered Na-based oxides with the general composition of NaTMO (TM: transition metal) have attracted significant attention for their high compositional diversity that provides tunable electrochemical performance for electrodes in sodium-ion batteries. The various compositions bring forward complex structural chemistry that is decisive for the layered stacking structure, Na-ion conductivity, and the redox activity, potentially promising new avenues in functional material properties. In this work, we have explored the maximum Na content in P2-type layered oxides and discovered that the high-content Na in the host enhances the structural stability; moreover, it promotes the oxidation of low-valent cations to their high oxidation states (in this case Ni). This can be rationalized by the increased hybridization of the O(2)-TM(3-*) states, affecting both the local TM environment as well as the interactions between the NaO and TMO layers. These properties are highly beneficial for the Na storage capabilities as required for cathode materials in sodium-ion batteries. It leads to excellent Na-ion mobility, a large storage capacity (>100 mAh g between 2.0-4.0 V), yet preventing the detrimental sliding of the TMO layers (P2-O2 structural transition), as reflected by the ultralong cycle life (3000 (dis)charge cycles demonstrated). These findings expand the horizons of high Na-content P2-type materials, providing new insights of the electronic and structural chemistry for advanced cathode materials.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7252945PMC
http://dx.doi.org/10.1021/jacs.9b13572DOI Listing

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