Skip to main navigation Skip to search Skip to main content

Engineering the Transformation Strain in LiMnyFe1-yPO4 Olivines for Ultrahigh Rate Battery Cathodes

  • Dorthe B. Ravnsbæk
  • , Kai Xiang
  • , Wenting Xing
  • , Olaf J. Borkiewicz
  • , Kamila M. Wiaderek
  • , Paul Gionet
  • , Karena W. Chapman
  • , Peter J. Chupas
  • , Ming Tang
  • , Yet Ming Chiang
  • Massachusetts Institute of Technology
  • University of Southern Denmark
  • United States Department of Energy
  • A123-Systems
  • Rice University

Research output: Contribution to journalArticlepeer-review

89 Scopus citations

Abstract

Alkali ion intercalation compounds used as battery electrodes often exhibit first-order phase transitions during electrochemical cycling, accompanied by significant transformation strains. Despite ∼30 years of research into the behavior of such compounds, the relationship between transformation strain and electrode performance, especially the rate at which working ions (e.g., Li) can be intercalated and deintercalated, is still absent. In this work, we use the LiMnyFe1-yPO4 system for a systematic study, and measure using operando synchrotron radiation powder X-ray diffraction (SR-PXD) the dynamic strain behavior as a function of the Mn content (y) in powders of ∼50 nm average diameter. The dynamically produced strain deviates significantly from what is expected from the equilibrium phase diagrams and demonstrates metastability but nonetheless spans a wide range from 0 to 8 vol % with y. For the first time, we show that the discharge capacity at high C-rates (20-50C rate) varies in inverse proportion to the transformation strain, implying that engineering electrode materials for reduced strain can be used to maximize the power capability of batteries.

Original languageEnglish
Pages (from-to)2375-2380
Number of pages6
JournalNano Letters
Volume16
Issue number4
DOIs
StatePublished - Apr 13 2016

Keywords

  • cathode
  • Li-ion batteries
  • lithium manganese iron phosphate
  • misfit strain
  • operando
  • phase transformation
  • rate capability
  • X-ray diffraction

Fingerprint

Dive into the research topics of 'Engineering the Transformation Strain in LiMnyFe1-yPO4 Olivines for Ultrahigh Rate Battery Cathodes'. Together they form a unique fingerprint.

Cite this