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Remodeling Highly Fluorinated Electrolyte via Shielding Agent Regulation toward Practical Lithium Metal Batteries. | LitMetric

Remodeling Highly Fluorinated Electrolyte via Shielding Agent Regulation toward Practical Lithium Metal Batteries.

Adv Sci (Weinh)

National & Local United Engineering Laboratory for Power Battery, Department of Chemistry, Northeast Normal University, Changchun, 130022, China.

Published: December 2024

AI Article Synopsis

  • - Highly fluorinated electrolytes enhance electrochemical stability in lithium metal batteries (LMBs), but too much fluorination can reduce ionic conductivity and create slow ion transport layers.
  • - The introduction of fluorinated amide (FDMA) as a "shielding agent" helps optimize the lithium solvation structure, improving solid-electrolyte interphase while maintaining the benefits of fluorinated electrolytes.
  • - The resulting optimal electrolyte mix allows for remarkable battery performance, achieving 2000 cycles with high capacity retention in a Li||NCM622 setup, and even producing efficient pouch cells with an impressive cycle life of over 150 cycles.

Article Abstract

Highly fluorinated electrolytes have proved effective in improving electrochemical stability of lithium metal batteries. However, excessive fluorination not only detrimentally impacts the electrolyte ionic conductivity, but also inevitably forms the over-fluorinated interphases with sluggish ion diffusivity. Herein, a strategy on remodeling Li solvation structure in highly fluorinated electrolyte aided is proposed by fluorinated amide (FDMA), which denoted as "shielding agent". Benefitting from FDMA's high donor number (DN) value (22.1), the Li-dipole (fluoroethylene carbonate (FEC) or trans-4,5-Difluoroethylenecarbonate (DFEC)) interaction is interrupted and the participation of FDMA in primary solvation sheath fructify the solid-electrolyte interphase without scarifying the privilege of fluorinated electrolyte on interphase chemistry. Eventually, the optimal high-fluorinated electrolyte (FDMA/DFEC + 1.0 mol L LiTFSI) with this unique shielding effect displays high ionic conductivity and rapid Li desolvation behavior, enabling Li||LiNiCoMnO (Li||NCM622) to achieve an ultralong cycle-life of 2000 cycles at 1C with 84.7% capacity retention. Even under extreme conditions (NCM622: 10 mg cm; electrolyte: 20 µL; Li: 50 µm), the Li||NCM622 displays excellent electrochemical performance. Additionally, 447 Wh kg Li||LiNiCoMnO (Li||NCM811) pouch cells have been successfully fabricated and demonstrate an exceptional cycle-life over 150 cycles. The proposed "shielding" strategy to modulate the solvation structure paves the way for developing practical LMBs with fluorinated electrolytes.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11615804PMC
http://dx.doi.org/10.1002/advs.202404248DOI Listing

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