Haloaromatic Reduction-Induced Formation of a High Surface Work Function Protective Layer on a Lithium Electrode for Stable Lithium Metal Batteries.
basic_science · Level V
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- Record sourced from PubMed, PMID 41145226.
- Also identified by DOI 10.1021/acsnano.5c11595.
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Abstract
A liquid-phase strategy for stabilizing lithium metal electrodes in lithium metal batteries using halogen-substituted benzophenone compounds (4-X-BzPh, X = F, Cl, and Br) is performed. These compounds undergo spontaneous haloaromatic reduction upon contact with lithium, forming thin and uniform protective layers of lithium halides (LiX, where X = F, Cl, and Br). This process enables homogeneous passivation without the need for complex fabrication techniques. Among the LiX species, LiF exhibits the highest surface work function and the strongest electron-blocking properties, effectively suppressing dendrite formation and electrolytic decomposition. Moreover, the proposed approach is successfully scaled to pouch cell configurations, demonstrating compatibility with practical battery systems. This haloaromatic compound-based liquid modification strategy enhances the reversibility and stability of lithium metal electrodes through the spontaneous formation of functional LiX interphases and leveraging the protective characteristics of LiX layers.