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Protective Coating of Single-Crystalline Ni-Rich Cathode Enables Fast Charging in All-Solid-State Batteries.

Authors :
Zhao W
Zhang R
Ren F
Karger L
Dreyer SL
Lin J
Ma Y
Cheng Y
Pal AS
Velazquez-Rizo M
Ahmadian A
Zhang Z
Müller P
Janek J
Yang Y
Kondrakov A
Brezesinski T
Source :
ACS nano [ACS Nano] 2025 Jan 29. Date of Electronic Publication: 2025 Jan 29.
Publication Year :
2025
Publisher :
Ahead of Print

Abstract

Improving interfacial stability between cathode active material (CAM) and solid electrolyte (SE) is vital for developing high-performance all-solid-state batteries (ASSBs), with compatibility issues among the cell components representing a major challenge. CAM surface coating with a chemically inert ion conductor is a promising approach to suppress side reactions occurring at the cathode interfaces. Another strategy to mitigate mechanical degradation involves utilizing single-crystalline particle morphologies. Their more robust bulk structure and lower tortuosity for charge transport, compared to polycrystalline (PC) CAMs, can significantly enhance cyclability in ASSBs. Herein, we coated a LiNbO <subscript>3</subscript> protective layer onto the free surface of quasi single-crystalline LiNi <subscript>0.83</subscript> Co <subscript>0.12</subscript> Mn <subscript>0.05</subscript> O <subscript>2</subscript> (SC83) particles. Pellet-stack ASSB cells using the LiNbO <subscript>3</subscript> @SC83 CAM and argyrodite Li <subscript>6</subscript> PS <subscript>5</subscript> Cl as SE showed a capacity retention of 88% after 1000 cycles at the 1 C rate, compared to only 71% for the uncoated counterpart and far superior to that of LiNbO <subscript>3</subscript> @PC83 (30%). The effectiveness of LiNbO <subscript>3</subscript> coating and the SC-NCM nature in mitigating electro-chemo-mechanical degradation was studied by combining modeling and physical/electrochemical characterizations. We demonstrate that the capacity decay at fast charge is due primarily to the mechanical degradation of CAM particles, while it is strongly determined by CAM|SE interfacial reactions under slow-charging conditions.

Details

Language :
English
ISSN :
1936-086X
Database :
MEDLINE
Journal :
ACS nano
Publication Type :
Academic Journal
Accession number :
39879526
Full Text :
https://doi.org/10.1021/acsnano.4c14322