From Solid-Solution MXene to Cr-Substituted Na3V2(PO4)3: Breaking the Symmetry of Sodium Ions for High-Voltage and Ultrahigh-Rate Cathode Performance

Hong Yu, Xiaopeng Ruan, Jinjin Wang, Zhenyi Gu, Qinghua Liang, Jun Ming Cao, Jinzhao Kang, Cheng Feng Du, Xing Long Wu

Research output: Contribution to journalArticlepeer-review

61 Scopus citations

Abstract

Stabilizing Na+accessibility at high voltage and accelerating Na+diffusivity are pressing issues to further enhance the energy density of the Na3V2(PO4)3(NVP) cathode for sodium-ion batteries (SIBs). Herein, by taking a V/Cr solid-solution MXene as a precursor, a facile in-situ reactive transformation strategy to embed Cr-substituted NVP (NVCP) nanocrystals in a dual-carbon network is proposed. Particularly, the substituted Cr atom triggers the accessibility of additional Na+in NVCP, which is demonstrated by an additional reversible redox plateau at 4.0 V even under extreme conditions. More importantly, the Cr atom alters the Na+ordering at the Na2 sites with an additional intermediate phase formation during charging/discharging, thus reducing the energy barriers for Na+migration. As a result, Na+diffusivity in NVCP accelerates to 2-3 orders of magnitude higher than that of NVP. Eventually, the NVCP cathode exhibits extraordinarily high-rate capability (78 mA g-1at 200 C and 68975 W kg-1), outstanding cycle stability (over 1500 cycles at 10 C), excellent low-temperature property, and full cell performance.

Original languageEnglish
Pages (from-to)21174-21185
Number of pages12
JournalACS Nano
Volume16
Issue number12
DOIs
StatePublished - 27 Dec 2022

Keywords

  • High voltage
  • NASICON
  • Sodium-ion batteries
  • Sodium-ion ordering
  • Solid-solution MXenes
  • Ultrahigh-rate capability

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