4.8 Article

Role of perfluoropolyether-based electrolytes in lithium metal batteries: Implication for suppressed Al current collector corrosion and the stability of Li metal/electrolytes interfaces

Journal

JOURNAL OF POWER SOURCES
Volume 380, Issue -, Pages 115-125

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.jpowsour.2018.01.082

Keywords

Perfluoropolyether; Polymer electrolytes; Aluminum current collector corrosions; Lithium dendrites; Lithium metal batteries

Funding

  1. Special fund of key technology research and development projects [20180201097GX, 20180201099GX, 20180201096GX]
  2. Jilin province science and technology department
  3. 13th Fiveyear plan Science and Technology Research of Jilin province
  4. Key Subject Construction of Physical Chemistry of Northeast Normal University

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The development of safe and high performance lithium metal batteries represents a major technological challenge for this new century. Historically, intrinsic instabilities of conventional liquid organic electrolytes induced battery failures and safety issues that hinder the practical utilization of advanced rechargeable lithium metal batteries. Herein, we report a multifunctional perfluoropolyether-based liquid polymer electrolyte (PFPE-MC/LiTFSI), presenting a unique anion-solvent interaction. This interaction optimizes the interfacial chemistry of lithium metal batteries, which effectively inhibits the corrosion of aluminum current collectors, suppresses lithium dendrite growth, and also facilitates the formation of a thin and stable SEI layer on Li anode. Even at a high current density of 0.7 mA cm(-2), the lithium dendrites do not form after 1360 h of continuous operation. The LiFePO4 vertical bar PFPE-MC/LiTFSI vertical bar Li cell delivers a stable cycling performance with over 99.9% columbic efficiency either at ambient temperature or high temperature, which is significantly superior to those using traditional carbonate electrolytes. In addition, PFPE-MC/LiTFSI electrolyte also possesses eye-catching properties, such as being non-flammable, non-volatile, non-hygroscopic, and existing in the liquid state between -90 degrees C and 200 degrees C, which further ensures the high safety of the lithium metal batteries, making this electrolyte promising for the development of high energy lithium metal batteries.

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