4.7 Article

Robust Pinhole-free Li3N Solid Electrolyte Grown from Molten Lithium

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ACS CENTRAL SCIENCE
卷 4, 期 1, 页码 97-104

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acscentsci.7b00480

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  1. Office of Vehicle Technologies of the U.S. Department of Energy under the Advanced Battery Materials Research (BMR) Program
  2. Department of Defense (DoD) through the National Defense Science & Engineering Graduate Fellowship (NDSEG) Program
  3. Stanford Graduate Fellowship
  4. Office of Vehicle Technologies of the U.S. Department of Energy under the Battery500 Consortium

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Lithium metal is the ultimate anode choice for high energy density rechargeable lithium batteries. However, it suffers from inferior electrochemical performance and safety issues due to its high reactivity and the growth of lithium dendrites. It has long been desired to develop a materials coating on Li metal, which is pinhole-free, mechanically robust without fracture during Li metal deposition and stripping, and chemically stable against Li metal and liquid electrolytes, all while maintaining adequate ionic conductivity. However, such an ideal material coating has yet to be found. Here we report a novel synthesis method by reacting clean molten lithium foil directly with pure nitrogen gas to generate instantaneously a pinhole-free and ionically conductive alpha-Li3N film directly bonded onto Li metal foil. The film consists of highly textured large Li3N grains (tens of mu m) with (001) crystalline planes parallel to the Li metal surface. The bonding between textured grains is strong, resulting in a mechanically robust film which does not crack even when bent to a 0.8 cm curvature radius and is found to maintain pinhole-free coverage during Li metal deposition and stripping. The measured ionic conductivity is up to 5.2 X 10(-4) S cm(-1), sufficient for maintaining regular current densities for controllable film thicknesses ranging from 2 to 30 mu m. This Li3N coating is chemically stable, isolating the reactive metallic lithium from liquid electrolyte, prevents continuous electrolyte consumption during battery cycling, and promotes dendrite-free uniform lithium plating/stripping underneath. We demonstrated Li vertical bar Li4Ti5O12 cells with stable and flat potential profiles for 500 cycles without capacity decay or an increase in potential hysteresis.

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