High dielectric barium titanate porous scaffold for efficient Li metal cycling in anode-free cells

Journal Article (2021)
Author(s)

C. Wang (TU Delft - RST/Storage of Electrochemical Energy)

M. Liu (TU Delft - Team Arjan Mol)

M. Thijs (TU Delft - RID/TS/Technici Pool)

F.G.B. Ooms (TU Delft - RST/Technici Pool)

Swapna Ganapathy (TU Delft - RID/TS/Instrumenten groep)

M Wagemaker (TU Delft - RST/Storage of Electrochemical Energy)

Research Group
RST/Storage of Electrochemical Energy
Copyright
© 2021 C. Wang, M. Liu, M.A. Thijs, F.G.B. Ooms, S. Ganapathy, M. Wagemaker
DOI related publication
https://doi.org/10.1038/s41467-021-26859-8
More Info
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Publication Year
2021
Language
English
Copyright
© 2021 C. Wang, M. Liu, M.A. Thijs, F.G.B. Ooms, S. Ganapathy, M. Wagemaker
Research Group
RST/Storage of Electrochemical Energy
Issue number
1
Volume number
12
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Abstract

Li metal batteries are being intensively investigated as a means to achieve higher energy density when compared with standard Li-ion batteries. However, the formation of dendritic and mossy Li metal microstructures at the negative electrode during stripping/plating cycles causes electrolyte decomposition and the formation of electronically disconnected Li metal particles. Here we investigate the use of a Cu current collector coated with a high dielectric BaTiO3 porous scaffold to suppress the electrical field gradients that cause morphological inhomogeneities during Li metal stripping/plating. Applying operando solid-state nuclear magnetic resonance measurements, we demonstrate that the high dielectric BaTiO3 porous scaffold promotes dense Li deposition, improves the average plating/stripping efficiency and extends the cycling life of the cell compared to both bare Cu and to a low dielectric scaffold material (i.e., Al2O3). We report electrochemical tests in full anode-free coin cells using a LiNi0.8Co0.1Mn0.1O2-based positive electrode and a LiPF6-based electrolyte to demonstrate the cycling efficiency of the BaTiO3-coated Cu electrode.