4.6 Article

Composite Electrode Ink Formulation for All Solid-State Batteries

期刊

JOURNAL OF THE ELECTROCHEMICAL SOCIETY
卷 166, 期 14, 页码 A3182-A3188

出版社

ELECTROCHEMICAL SOC INC
DOI: 10.1149/2.0141914jes

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资金

  1. National Science Foundation [1847029, 1727863]
  2. Vanderbilt Institute of Nanoscience and Engineering (VINSE)
  3. Ralph E. Powe Junior Faculty Enhancement Award
  4. Directorate For Engineering
  5. Div Of Chem, Bioeng, Env, & Transp Sys [1847029] Funding Source: National Science Foundation
  6. Directorate For Engineering
  7. Div Of Civil, Mechanical, & Manufact Inn [1727863] Funding Source: National Science Foundation

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Solid-state batteries employ composite electrodes which contain a solid ion conductor, a solid active material, a conductive additive, and a binder. The electrode microstructure fundamentally differs from electrodes in conventional batteries because the pore region is ion blocking. While there is extensive research on how to integrate a lithium metal with inorganic electrolytes, there is less knowledge on how an electrode can be integrated with an inorganic electrolyte. Solution processing techniques are ideal for scalable manufacturing and rely on creating an ink which combines the solid material, a binder, and solvent. Ink engineering relies on tailoring the fluidics (rheology), aggregation behavior, and stability for a desired coating process. In this work, we systematically probe the role of two ink constituents: the (1) binder, and (2) solvent on electrode microstructure formation. Lithium titanate anodes achieve nearly a 3-4X increase in capacity from 1.5 mAh/g and 3 mAh/g to 9 mAh/g and >= 12 mAh/g when a high viscosity solvent is employed. The binder plays a larger role in dictating performance of the electrode than surface adhesion properties. Inks with well dispersed constituents led to more effective electrodes for charge storage. (C) The Author(s) 2019. Published by ECS.

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