Surface Reconditioning of Lithium Metal Electrodes by Laser Treatment for the Industrial Production of Enhanced Lithium Metal Batteries

Author:

Kriegler Johannes1ORCID,Ballmes Heiko2,Dib Serge3,Demir Ali Gökhan3ORCID,Hille Lucas1ORCID,Liang Yunhao1,Wach Lovis1ORCID,Weinmann Steffen4,Keilhofer Josef1ORCID,Kim Kun Joong4ORCID,Rupp Jennifer L. M.45ORCID,Zaeh Michael F.1ORCID

Affiliation:

1. Technical University of Munich; TUM School of Engineering and Design Department of Mechanical Engineering Institute for Machine Tools and Industrial Management Boltzmannstr. 15 85748 Garching Germany

2. Schaeffler Technologies AG & Co. KG 91074 Herzogenaurach Germany

3. Department of Mechanical Engineering Politecnico di Milano Via La Masa 1 Milan 20158 Italy

4. TUM School of Natural Sciences Department of Chemistry Technical University of Munich 85747 Garching Germany

5. TUMint. Energy Research GmbH Lichtenbergstr. 4 85748 Garching Germany

Abstract

AbstractIncorporating lithium metal anodes in next‐generation batteries promises enhanced energy densities. However, lithium's reactivity results in the formation of a native surface film, affecting battery performance. Therefore, precisely controlling the chemical and morphological surface condition of lithium metal anodes is imperative for producing high‐performance lithium metal batteries. This study demonstrates the efficacy of laser treatment for removing superficial contaminants from lithium metal substrates. To this end, picosecond‐pulsed laser radiation is proposed for modifying the surface of lithium metal substrates. Scanning electron microscopy (SEM) revealed that different laser process regimes can be exploited to achieve a wide spectrum of surface morphologies. Energy‐dispersive X‐ray spectroscopy (EDX) confirmed substantial reductions of ≈80% in oxidic and carbonaceous surface species. The contamination layer removal translated into interfacial resistance reductions of 35% and 44% when testing laser‐cleaned lithium metal anodes in symmetric all‐solid‐state batteries (ASSBs) with lithium phosphorus sulfur chloride (LPSCl) and lithium lanthanum zirconium oxide (LLZO) solid electrolytes, respectively. Finally, a framework for integrating laser cleaning into industrial battery production is suggested, evidencing the industrial feasibility of the approach. In summary, this work advances the understanding of lithium metal surface treatments and serves as proof of principle for its industrial applicability.

Publisher

Wiley

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