Revealing the Neglected Role of Passivation Layers of Current Collectors for Solid‐State Anode‐Free Batteries

Y Yijia Wang (Key Laboratory of Micro‐Nano Fabrication and Device Manufacturing in Universities of Hunan Province School of Physics Central South University Changsha China) B Bibin Jose (Institute of Energy Materials and Devices Materials Synthesis and Processing (IMD‐2) Forschungszentrum Jülich GmbH 52425 Jülich Germany) Y Yi Yuan (Interdisciplinary Research Center on Biology and Chemistry, Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences, 100 Haike Rd., Shanghai 201210, China) A Aadharshini Ganesh (Department of Mechanical and Materials Engineering University of Western Ontario London Ontario N6A 5B9 Canada) R Rina Muhammad Faisal (Department of Chemistry University of Western Ontario London Ontario N6A 5B7 Canada) K Ka Ho Chan (Flex‐Ion Battery Innovation Center Windsor Ontario N8W 0A6 Canada) J Jack Bekou (Flex‐Ion Battery Innovation Center Windsor Ontario N8W 0A6 Canada) L Lijia Liu (Department of Chemistry, Western University, 1151 Richmond Street, London, ON N6A5B7, Canada) P Payam Kaghazchi (Materials Synthesis and Processing (IMD-2), Institute of Energy Materials and Devices, Forschungszentrum Jülich GmbH 3 , 52425 Jülich,) Y Yang Zhao

Abstract

Abstract Anode‐free sulfide‐based all‐solid‐state lithium metal batteries (ASSLMBs), which eliminate the need for a lithium metal anode during fabrication, offer superior energy density, enhanced safety, and simplified manufacturing. Their performance is largely influenced by the interfacial properties of the current collectors. Although previous studies have investigated the degradation of sulfide electrolytes on commonly used copper (Cu) and stainless steel (SS) current collectors, the impact of spontaneously formed surface oxides, such as copper oxide (Cu 2 O/CuO) and chromium oxide (Cr 2 O 3 ), on interfacial stability remains underexplored. This study systematically evaluates the neglected role of passivation layers of both Cu and SS. Results demonstrate that Cu facilitates more stable lithium deposition. Electrochemical impedance spectroscopy (EIS) reveals that interfacial resistance on SS is consistently higher than on Cu during cycling. In‐situ X‐ray absorption spectroscopy (XAS) and computational modelling confirm the formation of phosphate (PO 4 3− ) and sulfate (SO 4 2− ) species at both interfaces, attributed to reactions between the sulfide electrolyte and surface oxides. On SS, partial reversible formation of transition metal chlorides is also detected. Based on these findings, an artificial interface is engineered on Cu, significantly improving lithium plating/stripping efficiency. These insights contribute to solid‐solid interface engineering strategies and advance the fundamental understanding of anode‐free ASSLMBs.

Article Details

Volume / Issue Vol. 37, Issue 47
Published November 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

Y

Yijia Wang

Key Laboratory of Micro‐Nano Fabrication and Device Manufacturing in Universities of Hunan Province School of Physics Central South University Changsha China

B

Bibin Jose

Institute of Energy Materials and Devices Materials Synthesis and Processing (IMD‐2) Forschungszentrum Jülich GmbH 52425 Jülich Germany

Y

Yi Yuan

Interdisciplinary Research Center on Biology and Chemistry, Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences, 100 Haike Rd., Shanghai 201210, China

A

Aadharshini Ganesh

Department of Mechanical and Materials Engineering University of Western Ontario London Ontario N6A 5B9 Canada

R

Rina Muhammad Faisal

Department of Chemistry University of Western Ontario London Ontario N6A 5B7 Canada

K

Ka Ho Chan

Flex‐Ion Battery Innovation Center Windsor Ontario N8W 0A6 Canada

J

Jack Bekou

Flex‐Ion Battery Innovation Center Windsor Ontario N8W 0A6 Canada

L

Lijia Liu

Department of Chemistry, Western University, 1151 Richmond Street, London, ON N6A5B7, Canada

P

Payam Kaghazchi

Materials Synthesis and Processing (IMD-2), Institute of Energy Materials and Devices, Forschungszentrum Jülich GmbH 3 , 52425 Jülich,

Y

Yang Zhao