Back to Search
Start Over
Controlled formation of mixed nanoscale domains of high capacity Fe2O3-FeF3 conversion compounds by direct fluorination
- Source :
- ACS nano. 9(3)
- Publication Year :
- 2015
-
Abstract
- We report a direct fluorination method under fluorine gas atmosphere using a fluidized bed reactor for converting nanophase iron oxide (n-Fe2O3) to an electrochemically stable and higher energy density iron oxyfluoride/fluoride phase. Interestingly, no noticeable bulk iron oxyfluoride phase (FeOF) phase was observed even at fluorination temperature close to 300 °C. Instead, at fluorination temperatures below 250 °C, scanning transmission electron microscopy coupled with electron energy loss spectroscopy (STEM-EELS) and X-ray photoelectron spectroscopy (XPS) analysis showed surface fluorination with nominal composition, Fe2O3-xF2x (x1). At fluorination temperatures of 275 °C, STEM-EELS results showed porous interconnected nanodomains of FeF3 and Fe2O3 coexisting within the same particle, and overall the particles become less dense after fluorination. We performed potentiometric intermittent titration and electrochemical impedance spectroscopy studies to understand the lithium diffusion (or apparent diffusion) in both the oxyfluoride and mixed phase FeF3 + Fe2O3 composition, and correlate the results to their electrochemical performance. Further, we analyze from a thermodynamical perspective, the observed formation of the majority fluoride phase (77% FeF3) and the absence of the expected oxyfluoride phase based on the relative formation energies of oxide, fluoride, and oxyfluorides.
- Subjects :
- Materials science
Electron energy loss spectroscopy
Inorganic chemistry
General Engineering
Iron oxide
General Physics and Astronomy
chemistry.chemical_element
Dielectric spectroscopy
chemistry.chemical_compound
chemistry
Chemical engineering
X-ray photoelectron spectroscopy
Phase (matter)
Scanning transmission electron microscopy
Fluorine
General Materials Science
Lithium
Subjects
Details
- ISSN :
- 1936086X
- Volume :
- 9
- Issue :
- 3
- Database :
- OpenAIRE
- Journal :
- ACS nano
- Accession number :
- edsair.doi.dedup.....29f5f672ca67faf0a8f3c7bea5b17649