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Ti-Substituted NaNi0.5Mn0.5- xTixO2 Cathodes with Reversible O3−P3 Phase Transition for High-Performance Sodium-Ion Batteries

  • Peng Fei Wang
  • , Hu Rong Yao
  • , Xin Yu Liu
  • , Jie Nan Zhang
  • , Lin Gu
  • , Xi Qian Yu
  • , Ya Xia Yin
  • , Yu Guo Guo
  • CAS - Institute of Chemistry
  • University of Chinese Academy of Sciences
  • CAS - Institute of Physics

Research output: Contribution to journalArticlepeer-review

529 Scopus citations

Abstract

Sodium-ion batteries (SIBs) have been considered as potential candidates for stationary energy storage because of the low cost and wide availability of Na sources. O3-type layered oxides have been considered as one of the most promising cathodes for SIBs. However, they commonly show inevitable complicated phase transitions and sluggish kinetics, incurring rapid capacity decline and poor rate capability. Here, a series of sodium-sufficient O3-type NaNi0.5Mn0.5- x Ti x O2 (0 ≤ x ≤ 0.5) cathodes for SIBs is reported and the mechanisms behind their excellent electrochemical performance are studied in comparison to those of their respective end-members. The combined analysis of in situ X-ray diffraction, ex situ X-ray absorption spectroscopy, and scanning transmission electron microscopy for NaNi0.5Mn0.2Ti0.3O2 reveals that the O3-type phase transforms reversibly into a P3-type phase upon Na+ deintercalation/intercalation. The substitution of Ti for Mn enlarges interslab distance and could restrain the unfavorable and irreversible multiphase transformation in the high voltage regions that is usually observed in O3-type NaNi0.5Mn0.5O2, resulting in improved Na cell performance. This integration of macroscale and atomicscale engineering strategy might open up the modulation of the chemical and physical properties in layered oxides and grasp new insight into the optimal design of high-performance cathode materials for SIBs.

Original languageEnglish
Article number1700210
JournalAdvanced Materials
Volume29
Issue number19
DOIs
StatePublished - 17 May 2017

Keywords

  • cathodes
  • electrochemistry
  • O3−P3
  • phase transition
  • sodium-ion batteries

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