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Tailoring the electrochemical activity of magnesium chromium oxide towards Mg batteries through control of size and crystal structure

Authors :
Soojeong Kim
Timothy T. Fister
Gene M. Nolis
Thomas E. Ashton
Liam McCafferty
Ian D. Johnson
Jawwad A. Darr
John W. Freeland
Hyun Deog Yoo
Jordi Cabana
Linhua Hu
Source :
Nanoscale. 11:639-646
Publication Year :
2019
Publisher :
Royal Society of Chemistry (RSC), 2019.

Abstract

Chromium oxides with the spinel structure have been predicted to be promising high voltage cathode materials in magnesium batteries. Perennial challenges involving the mobility of Mg2+ and reaction kinetics can be circumvented by nano-sizing the materials in order to reduce diffusion distances, and by using elevated temperatures to overcome activation energy barriers. Herein, ordered 7 nm crystals of spinel-type MgCr2O4 were synthesized by a conventional batch hydrothermal method. In comparison, the relatively underexplored Continuous Hydrothermal Flow Synthesis (CHFS) method was used to make highly defective sub-5 nm MgCr2O4 crystals. When these materials were made into electrodes, they were shown to possess markedly different electrochemical behavior in a Mg2+ ionic liquid electrolyte, at moderate temperature (110 °C). The anodic activity of the ordered nanocrystals was attributed to surface reactions, most likely involving the electrolyte. In contrast, evidence was gathered regarding the reversible bulk deintercalation of Mg2+ from the nanocrystals made by CHFS. This work highlights the impact on electrochemical behavior of a precise control of size and crystal structure of MgCr2O4. It advances the understanding and design of new cathode materials for Mg-based batteries.

Details

ISSN :
20403372 and 20403364
Volume :
11
Database :
OpenAIRE
Journal :
Nanoscale
Accession number :
edsair.doi.dedup.....473aa268ff2922c465580b2ef5281e2d