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Low Temperature Nanotailoring of Hydrated Compound by Alcohols: FeF·3HO as an Example. Preparation of Nanosized FeF·0.33HO Cathode Material for Li-Ion Batteries. | LitMetric

Low Temperature Nanotailoring of Hydrated Compound by Alcohols: FeF·3HO as an Example. Preparation of Nanosized FeF·0.33HO Cathode Material for Li-Ion Batteries.

Inorg Chem

State Key Laboratory for Chemo/Biosensing and Chemometrics, and College of Chemistry and Chemical Engineering , Hunan University, Changsha , Hunan , 410082 , P. R. China.

Published: May 2019

AI Article Synopsis

  • - Iron fluoride is a promising cathode material for lithium-ion batteries (LIBs) but has challenges like poor conductivity and volume change during cycling.
  • - The study introduces a low temperature nanotailoring (LTNT) method to convert larger iron fluoride particles into nanosized ones, improving their performance significantly.
  • - The resulting nanosized FeF·0.33HO exhibits a high capacity of 190 mAh/g after 50 cycles, demonstrating excellent rate capability, and the LTNT method can also be applied to other hydrated compounds.

Article Abstract

Iron fluoride is a kind of high-capacity conversion-type cathode material for lithium-ion batteries (LIBs) and shows attractive practical application potential. However, it still faces many challenges, such as poor electronic conductivity and volume change while cycling. Reducing particle size to nanoscale has been proved to be an effective way to address the poor electronic conductivity and huge volume change of iron fluoride cathodes for LIBs. In this study, a low temperature nanotailoring (LTNT) strategy is proposed to realize the conversion of microsized FeF·3HO to nanosized FeF·0.33HO by one-step treating with the assistance of alcohols. Meanwhile, the particle size and morphology of iron fluorides can be controlled by regulating the processing conditions. When evaluated as a cathode material for LIBs, the as-prepared bare FeF·0.33HO shows a high capacity of 190 mAh g after 50 cycles with excellent rate capability. This LTNT method is applicable to hydrates and even can be extended to easily hydrated compounds.

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Source
http://dx.doi.org/10.1021/acs.inorgchem.9b00054DOI Listing

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