Under Pressure: Offering Fundamental Insight into Structural Changes on Ball Milling Battery Materials

Laura Driscoll, Lizzie Driscoll*, Bo Dong, Farheen Sayed, Jacob Wilson, Christopher A. O'Keefe, Clare Grey, Phoebe Allan, Adam Michalchuk, Peter Slater*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

53 Downloads (Pure)

Abstract

Synthesis of Li ion battery materials via ball milling has been a huge area of growth, leading to new high-capacity electrode materials, such as a number of promising disordered rocksalt (DRS) phases. In prior work, it was generally assumed that the synthesis was facilitated simply by local heating effects during the milling process. In this work, we show that ball milling Li2MoO4 leads to a phase transformation to the high pressure spinel polymorph and we report electrochemical data for this phase. This observation of the formation of a high pressure polymorph shows that local heating effects alone cannot explain the phase transformation observed (phenakite to spinel) and so indicates the importance of other effects. In particular, we propose that when the milling balls collide with the material, the resulting shockwaves exert a localised pressure effect, in addition to local heating. To provide further support for this, we additionally report ball milling results for a number of case studies (Li2MnO3, Li2SnO3, Nb2O5) which reinforces the conclusion that local heating alone cannot explain the phase transformations observed. The work presented thus provides greater fundamental understanding of milling as a synthetic pathway and suggests potential strategies to prepare such samples without milling (e.g., doping to create internal chemical pressure). In addition, we suggest that further research is needed into the effect of the use of milling as a route to smaller particles, since we believe that such milling may also be affecting the surface structure of the particles through the influence of the shockwaves generated.
Original languageEnglish
Number of pages14
JournalEnergy & Environmental Science
Volume2023
Early online date29 Aug 2023
DOIs
Publication statusE-pub ahead of print - 29 Aug 2023

Bibliographical note

Funding information:
We would like to thank Faraday Institution CATMAT (FIRG016) project for funding. We would also like to thank EPSRC Underpinning Multi-User Equipment Call (EP/P030467/1) for the TEM facility and Dr Heather Greer for assistance with data collection.

Fingerprint

Dive into the research topics of 'Under Pressure: Offering Fundamental Insight into Structural Changes on Ball Milling Battery Materials'. Together they form a unique fingerprint.

Cite this