4.8 Article

Iron Phosphide Confined in Carbon Nanofibers as a Free-Standing Flexible Anode for High-Performance Lithium-Ion Batteries

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 13, Issue 29, Pages 34074-34083

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c05989

Keywords

iron phosphide; nanofibers; free-standing; nanocomposite; Li-ion batteries

Funding

  1. Georgia Institute of Technology
  2. National Natural Science Foundation of China [21938005, 21975159]

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Iron phosphide, as a candidate material for next-generation lithium-ion battery anodes with high specific capacity, tends to suffer from rapid capacity degradation due to structure pulverization. By confining Fe2P nanoparticles in carbon nanofibers, the challenge of chemomechanical breakdown of iron phosphide has been addressed, leading to the successful development of high-performance electrodes that are flexible and free-standing.
Iron phosphide with high specific capacity has emerged as an appealing candidate for next-generation lithium-ion battery anodes. However, iron phosphide could undergo conversion reactions and generally suffer from a rapid capacity degradation upon cycling due to its structure pulverization. Chemomechanical breakdown of iron phosphide due to its rigidity has been a challenge to fully realizing its electrochemical performance. To address this challenge, we report here on an enticing opportunity: a flexible, free-standing iron phosphide anode with Fe2P nanoparticles confined in carbon nanofibers may overcome existing challenges. For the synthesis, we introduce a facile electrospinning strategy that enables in situ formation of Fe2P within a carbon matrix. Such a carbon matrix can effectively minimize the structure change of Fe2P particles and protect them from pulverization, allowing the electrodes to retain a free-standing structure after long-term cycling. The produced electrodes showed excellent electrochemical performance in lithium-ion half and full cells, as well as in flexible pouch cells. These results demonstrate the successful development of iron phosphide materials toward high capacity, light weight, and flexible energy storage.

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