Multiple Cations Nanoconfinement in Ultrathin V2O5 Nanosheets Enables Ultrafast Ion Diffusion Kinetics Toward High-performance Zinc Ion Battery

Yang Liu, Chengjie Lu, Yunting Yang, Wenshu Chen, Fei Ye, Hongliang Dong, Yuping Wu, Renzhi Ma, Linfeng Hu

Research output: Contribution to journalArticlepeer-review

60 Scopus citations

Abstract

Nanoconfinement of cations in layered oxide cathode is an important approach to realize advanced zinc ion storage performance. However, thus far, the conventional hydrothermal/solvothermal route for this nanoconfinement has been restricted to its uncontrollable phase structure and the difficulty on the multiple cation co-confinement simultaneously. Herein, this work reports a general, supramolecular self-assembly of ultrathin V2O5 nanosheets using various unitary cations including Na+, K+, Mg2+, Ca2+, Zn2+, Al3+, NH4+, and multiple cations (NH4+ + Na+, NH4+ + Na+ + Ca2+, NH4+ + Na+ + Ca2+ +Mg2+). The unitary cation confinement results in a remarkable increase in the specific capacity and Zn-ion diffusion kinetics, and the multiple cation confinement gives rise to superior structural and cycling stability by multiple cation synergetic pillaring effect. The optimized diffusion coefficient of Zn-ion (7.5 × 10−8 cm2 s−1) in this assembly series surpasses most of the V-based cathodes reported up to date. The work develops a novel multiple-cations nanoconfinement strategy toward high-performance cathode for aqueous battery. It also provides new insights into the guest cation regulation of zinc-ion diffusion kinetics through a general, supramolecular assembly pathway.

Original languageEnglish
Article number2312982
JournalAdvanced Materials
Volume36
Issue number18
DOIs
StatePublished - 2 May 2024
Externally publishedYes

Keywords

  • aqueous zinc-ion battery
  • ion diffusion kinetic
  • multiple cations
  • nanoconfinement
  • supramolecular assembly

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