MRS Meetings and Events

 

ES03.03.03 2024 MRS Spring Meeting

Enhancing Lithium Transport in Garnet-Type Solid Electrolyte for High-Performance All-Solid-State Batteries

When and Where

Apr 23, 2024
5:00pm - 7:00pm

Flex Hall C, Level 2, Summit

Presenter

Co-Author(s)

Young-Geun Lee1,Jay Whitacre1

Carnegie Mellon University1

Abstract

Young-Geun Lee1,Jay Whitacre1

Carnegie Mellon University1
Garnet-type Li<sub>6.4</sub>La<sub>3</sub>Zr<sub>1.4</sub>Ta<sub>0.6</sub>O<sub>12</sub> (LLZTO) is a promising solid-state-electrolyte for all-solid-state batteries; it has a good chemical stability in contact with Li metal and high ionic conductivity. However, insufficient interfacial contact and associated voids caused by poor wetting between Li metal and LLZTO can lead to a huge interface resistance and thus poor electrochemical performance including a high overpotential and limited critical current density (CCD). In addition, Li dendrites can be formed and will propagate through the LLZTO microstructure within the pores and grain boundaries, which can cause cell short circuiting. In this work, LiAlO<sub>2</sub> (LAO) was used as a sintering additive to improve a LLZTO microstructure with a denser structure, lower porosity, and compacted grain boundary regions. LLZTO with LAO (LLZTO-LAO) showed a higher relative density (~95%) and reduced porosity (~4.2%) compared to pure LLZTO (88% of relative density and 9.5% porosity). To calculate the ionic conductivity and activation energy of the LLZTO, a blocking electrode sputtered by gold on both side LLZTO was fabricated. LLZTO-LAO displays an improved ionic-conductivity (0.59 S cm<sup>-1</sup>) and Li-ion activation energy (0.38 eV). In order to investigate interface resistances between LLZTO-LAO and Li metal, Li-Li symmetric electrochemical test cells were used. An enhanced interfacial resistance (72.5 Ω cm<sup>2</sup>) was demonstrated for the LLZTO-LAO cell.<br/>Li plating/stripping tests with critical current density (CCD) and cycling performance of Li symmetric cells were investigated by galvanostatic cycling experiment. While LLZTO delivers a lower CCD of 0.1 mA cm<sup>-2</sup>, a higher CCD of 0.3 mA cm<sup>-2</sup> is demonstrated within the symmetric cell with LLZTO-LAO. In addition, LLZTO-LAO showed lower overpotentials than LLZTO at the various current densities. The improved CCD and overpotential of LLZTO-LAO can be attributed to LAO additives that cause an improved microstructure with a reduced porosity resulting in a good interfacial contact between electrolyte and Li metal.

Keywords

additives

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

Howard Qingsong Tu
Yan Yao

In this Session

ES03.03.01
Formation of Intimate Interfacial Contact between The NCM and Li6PS5Cl Solid Electrolyte for All-Solid-State Batteries

ES03.03.02
Multifunctional Covalent Organic Framework Solid Electrolyte Facilitating Fast Li-Ion Diffusion in Solid-State Batteries

ES03.03.03
Enhancing Lithium Transport in Garnet-Type Solid Electrolyte for High-Performance All-Solid-State Batteries

ES03.03.04
The Effect of Slurry pH Values on The Electrochemical Properties of Manganese-Based-Oxide Electrode for Solid-State Batteries

ES03.03.05
Zwitterionic Covalent Organic Framework Solid Electrolyte with Ordered Ionic Channels for All-Solid-State Lithium-Metal Batteries

ES03.03.06
Development of Solid Polymer Electrolyte with Excellent Electrochemical Properties Using High-Energy Electron Beam Irradiation

ES03.03.07
Rational Design of Electrolyte and Interface for High-Performance and Safer Solid-State Li Batteries

ES03.03.08
Covalent Organic Framework Based Solid State Electrolytes

ES03.03.09
Development of an All-Solid State Li-Ion System

ES03.03.11
Recent Advancements and Prospects Of Lithium-Ion Batteries: Smart Features, High Performance Anode, Cathode and Electrolyte Materials

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