Issue 29, 2020

An epoxy-reinforced ceramic sheet as a durable solid electrolyte for solid state Na-ion batteries

Abstract

In a conventional Na-ion battery system using liquid electrolyte, there are critical safety issues due to the instability of the liquid electrolyte. Na3Zr2Si2PO12 (NASICON) solid electrolyte is a material that is sufficient to replace a liquid electrolyte as it has high ionic conductivity and thermal and electrochemical stability. However, as there is a large interfacial resistance in the NASICON solid electrolyte powder, even when used in combination with a polymer electrolyte, the advantageous effects of ceramics are not easily exhibited. In this study, we propose a top-down method of combining a polymer with a ceramic in which an ion transport channel is previously formed. In this method, a NASICON solid electrolyte is partially sintered to form ion transport channels. Then the NASICON solid electrolyte pores are filled with an epoxy polymer to increase the strength of the epoxy-NASICON composite electrolyte. This method demonstrates the possibility of our composite electrolyte being used as a thin and strong film. As a result of our methods, the ionic conductivity and thermal and electrochemical stability of NASICON were maintained, while the physical strength was enhanced by approximately 2 times. In addition, a capacity of 120 mA h g−1 and stability of 20 cycles were confirmed in a half cell with a Na3V2(PO4)3 cathode and Na metal. This method proposes a new direction for research regarding composite electrolytes created using an oxide-based solid electrolyte.

Graphical abstract: An epoxy-reinforced ceramic sheet as a durable solid electrolyte for solid state Na-ion batteries

Supplementary files

Article information

Article type
Paper
Submitted
18 Jun 2020
Accepted
01 Jul 2020
First published
20 Jul 2020

J. Mater. Chem. A, 2020,8, 14528-14537

Author version available

An epoxy-reinforced ceramic sheet as a durable solid electrolyte for solid state Na-ion batteries

Y. J. Lim, J. Han, H. W. Kim, Y. Choi, E. Lee and Y. Kim, J. Mater. Chem. A, 2020, 8, 14528 DOI: 10.1039/D0TA06024K

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