Welcome to the new version of CaltechAUTHORS. Login is currently restricted to library staff. If you notice any issues, please email coda@library.caltech.edu
Published March 2019 | Accepted Version + Supplemental Material
Journal Article Open

Dense Freeze‐cast Li_7La_3Zr_2O_(12) Solid Electrolytes with Oriented Open Porosity and Contiguous Ceramic Scaffold

Abstract

Freeze casting is used for the first time to prepare solid electrolyte scaffolds with oriented porosity and dense ceramic walls made of Li_7La_3Zr_2O_(12) (LLZO), one of the most promising candidates for solid state battery electrolytes. Processing parameters ‐ such as solvent solidification rate, solvent type, and ceramic particle size ‐ are investigated, focusing on their influence on porosity and ceramic wall density. Dendrite‐like porosity is obtained when using cyclohexane and dioxane as solvents. Lamellar porosity is observed in aqueous slurries resulting in a structure with the highest apparent porosity and densest ceramic scaffold but weakest mechanical properties due to the lack of interlamellar support. The use of smaller LLZO particle size in the slurries resulted in lower porosity and denser ceramic walls. The intrinsic ionic conductivity of the oriented LLZ ceramic scaffold is unaffected by the freeze casting technique, providing a promising ceramic scaffold for polymer infill in view of designing new types of ceramic‐polymer composites.

Additional Information

© 2018 American Ceramic Society. Issue Online: 04 January 2019; Version of Record online: 06 August 2018; Accepted manuscript online: 13 July 2018; Manuscript accepted: 08 July 2018; Manuscript revised: 27 June 2018; Manuscript received: 17 April 2018. This work was conducted at Caltech (USA) and CIC Energigune (Spain) within the framework of a Jose Castillejo mobility fellowship from the Spanish Ministry of Education, Culture, and Sports received by L.B. This work was also supported by the Basque government through the ELKARTEK 15 program. A.L. acknowledges financial support from IKERBASQUE. K.T.F. and M.N. acknowledge the support of the US National Science Foundation through DMR-1411218. L.B. also thanks Dr. Matthew Johnson and Neal Brodnik for helpful discussions.

Attached Files

Accepted Version - jace.15938.pdf

Supplemental Material - jace15938-sup-0001-figs1-s3.pdf

Files

jace.15938.pdf
Files (3.2 MB)
Name Size Download all
md5:95b1e4d63aabfe3712ec223e797ac3e9
2.1 MB Preview Download
md5:778fc21197fa75eaa5e2238651907a08
1.1 MB Preview Download

Additional details

Created:
August 19, 2023
Modified:
October 18, 2023