Uni‐Axial Densification of Slurry‐Casted Li₆PS₅Cl Tapes: The Role of Particle Size Distribution and Densification Pressure

Q Quoc‐Anh Tran (Department of Materials Science and Engineering NTNU Norwegian University of Science and Technology Trondheim 7034 Norway) M Meenal Agrawal (Department of Materials Science and Engineering NTNU Norwegian University of Science and Technology Trondheim 7034 Norway) M Michael Häusler (Materials Center Leoben Forschung GmbH Leoben Austria) J Johannes Hörmann (German Aerospace Center (DLR) Institute of Engineering Thermodynamics 89081 Stuttgart Germany) M Mohsen Sadeqi Moqadam (Department of Materials Science and Engineering NTNU Norwegian University of Science and Technology Trondheim 7034 Norway) G Günther J. Redhammer I Ingeborg Sellæg Ellingsen M Mir Mehraj Ud Din (Department of Materials Science and Engineering NTNU Norwegian University of Science and Technology Trondheim 7034 Norway) P Per Erik Vullum R Roman Zettl (AVL List GmbH Graz 8020 Austria) T Timo Danner A Arnulf Latz V Volker Hennige (AVL List GmbH Graz 8020 Austria) R Roland Brunner D Daniel Rettenwander (Department of Materials Science and Engineering)

Abstract

AbstractSolid‐state batteries are transformative solutions for electric vehicles, offering superior energy density and safety. Sulfide‐based solid electrolytes like Li₆PS₅Cl (LPSCl) combine high ionic conductivity and mechanical adaptability, but challenges remain in scaling up high‐performance separator tapes due to particle size distribution (PSD) and processing constraints. This study investigates the uni‐axial densification of slurry‐casted LPSCl tapes, focusing on PSD refinement and compaction pressure. Wet milling has been identified to effectively reduce PSD to submicron levels while preserving structural integrity and near‐pristine conductivity. A critical pressure threshold (≈350 MPa) for tape‐casted LPSCl slurries (2.5% hydrated poly(acrylonitrile‐co‐butadiene)) is identified, where ionic conductivity peaks due to particle fusion and the formation of conductive networks. However, open porosity (≈30%), particularly along the densification direction, and surface irregularities persist. These structural issues have significant implications for battery performance. For example, surface roughness and interfacial voids lead to localized current focusing, with current densities exceeding applied values by over 20 times. Percolating porosity accelerates dendritic failure modes, undermining stability and limiting cycling rates. This work underscores the need for optimized powder processing and densification techniques to enhance scalability and performance, advancing LPSCl‐based separators for the practical adoption of solid‐state batteries in electric vehicles and other high‐energy applications.

Article Details

Volume / Issue Vol. 37, Issue 30
Published July 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (15)

Q

Quoc‐Anh Tran

Department of Materials Science and Engineering NTNU Norwegian University of Science and Technology Trondheim 7034 Norway

M

Meenal Agrawal

Department of Materials Science and Engineering NTNU Norwegian University of Science and Technology Trondheim 7034 Norway

M

Michael Häusler

Materials Center Leoben Forschung GmbH Leoben Austria

J

Johannes Hörmann

German Aerospace Center (DLR) Institute of Engineering Thermodynamics 89081 Stuttgart Germany

M

Mohsen Sadeqi Moqadam

Department of Materials Science and Engineering NTNU Norwegian University of Science and Technology Trondheim 7034 Norway

G

Günther J. Redhammer

I

Ingeborg Sellæg Ellingsen

M

Mir Mehraj Ud Din

Department of Materials Science and Engineering NTNU Norwegian University of Science and Technology Trondheim 7034 Norway

P

Per Erik Vullum

R

Roman Zettl

AVL List GmbH Graz 8020 Austria

T

Timo Danner

A

Arnulf Latz

V

Volker Hennige

AVL List GmbH Graz 8020 Austria

R

Roland Brunner

D

Daniel Rettenwander

Department of Materials Science and Engineering