A Predictive Theory of Electrochemical Ostwald Ripening for Electrodeposited Lithium Metal

Fuente: arXiv
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Autores principales: Zhang, Hanning, Yazyev, Oleg V., Yamaletdinov, Ruslan
Formato: Preprint
Publicado: 2025
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author Zhang, Hanning
Yazyev, Oleg V.
Yamaletdinov, Ruslan
author_facet Zhang, Hanning
Yazyev, Oleg V.
Yamaletdinov, Ruslan
contents Electrode morphology critically determines the stability and efficiency of lithium metal anodes, yet no predictive framework has explained how measurable parameters control deposition. Here we introduce the first theoretical model of electrochemical Ostwald ripening, capturing the competition between electroplating and surface-energy-driven redistribution and identifying it as the governing process behind morphology evolution in the non-dendritic regime. The framework explicitly incorporates SEI resistance, electrolyte conductivity, electrode wettability, and current density revealing the transition from 2D SEI-limited to 3D electrolyte-limited growth. The model yields analytical expressions for nucleus size, density and distribution that quantitatively reproduce independent experimental results and establishes a direct link between plating conditions, morphology, and Coulombic efficiency. By providing experimentally accessible relationships between key parameters and deposition outcomes, the framework enables predictive understanding of lithium plating and provides a broadly applicable basis for controlling electrodeposition morphology across diverse electrochemical systems.
format Preprint
id arxiv_https___arxiv_org_abs_2505_04198
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A Predictive Theory of Electrochemical Ostwald Ripening for Electrodeposited Lithium Metal
Zhang, Hanning
Yazyev, Oleg V.
Yamaletdinov, Ruslan
Materials Science
Soft Condensed Matter
Chemical Physics
Electrode morphology critically determines the stability and efficiency of lithium metal anodes, yet no predictive framework has explained how measurable parameters control deposition. Here we introduce the first theoretical model of electrochemical Ostwald ripening, capturing the competition between electroplating and surface-energy-driven redistribution and identifying it as the governing process behind morphology evolution in the non-dendritic regime. The framework explicitly incorporates SEI resistance, electrolyte conductivity, electrode wettability, and current density revealing the transition from 2D SEI-limited to 3D electrolyte-limited growth. The model yields analytical expressions for nucleus size, density and distribution that quantitatively reproduce independent experimental results and establishes a direct link between plating conditions, morphology, and Coulombic efficiency. By providing experimentally accessible relationships between key parameters and deposition outcomes, the framework enables predictive understanding of lithium plating and provides a broadly applicable basis for controlling electrodeposition morphology across diverse electrochemical systems.
title A Predictive Theory of Electrochemical Ostwald Ripening for Electrodeposited Lithium Metal
topic Materials Science
Soft Condensed Matter
Chemical Physics
url https://arxiv.org/abs/2505.04198