April 22 - 26, 2024
Seattle, Washington
May 7 - 9, 2024 (Virtual)
Symposium Supporters
2024 MRS Spring Meeting
ES03.12.04

Preparation of Structured Garnet LLZO Composite Solid Electrolyte Using Graphene Oxide as a Template

When and Where

Apr 26, 2024
9:00am - 9:15am
Room 423, Level 4, Summit

Presenter(s)

Co-Author(s)

Daniel Chang1,Wan-Yun Lee1,Che-Ning Yeh1

National Tsing Hua University1

Abstract

Daniel Chang1,Wan-Yun Lee1,Che-Ning Yeh1

National Tsing Hua University1
All-solid-state lithium-ion batteries are viewed as a promising candidate for next-generation batteries due to their safety and high energy density. Despite the enhanced safety of these batteries owing to the use of solid-state electrolytes (SSEs), there is still ample room for improvement in terms of their ionic conductivity. Among various types of SSEs, composite solid electrolytes (CSEs) stand out as they combine the benefits of polymer matrix and ceramic fillers. The ionic conductivity and transport behavior of CSEs is strongly influenced by the tortuosity and continuity of the ceramic fillers. Thus, achieving low tortuosity structures with straight, interconnected ion pathways in CSEs is highly desirable but challenging. In this work, we choose the garnet-type Li<sub>7</sub>La<sub>3</sub>Zr<sub>2</sub>O<sub>12</sub> (LLZO) as the ceramic filler, because of its high ionic conductivity (10<sup>-4</sup>-10<sup>-3</sup> S/cm) at room temperature and its great chemical stability against lithium metal anodes. Additionally, we use poly(ethylene oxide) (PEO) as the polymer matrix to form the CSE. While most aligned ceramic scaffold are made by templating fixed structures, such as wood, cotton, or cellulose, we harness graphene oxide (GO) as a template to fabricate oriented LLZO structures. This method allows us to establish versatile processing techniques for designing distinct ceramic structures with interconnected pathways, including honeycomb and layered structure. Utilizing a uni-directional freeze-drying process, we successfully create interconnected ceramic structures with low tortuosity. Consequently, the corresponding CSE exhibits significantly improved ionic conductivity compared to CSEs with randomly mixed ceramic fillers. Our work provides a promising approach to the realization of CSEs with superior ionic conductivity and further advancing the prospects of safer, more efficient, and higher energy density batteries.

Keywords

directional solidification | morphology

Symposium Organizers

Pieremanuele Canepa, University of Houston
Robert Sacci, Oak Ridge National Lab
Howard Qingsong Tu, Rochester Institute of Technology
Yan Yao, University of Houston

Symposium Support

Gold
Neware Technology LLC

Bronze
Toyota Motor Engineering and Manufacturing North America

Session Chairs

Stefan Adams
Xi Chen

In this Session