Investigation on the parameter dependency of the perforation process of graphite based lithium-ion battery electrodes using ultrashort laser pulses

Author:

Kleefoot Max-Jonathan12ORCID,Sandherr Jens3,Sailer Marc4,Nester Sara3,Martan Jiří5,Knoblauch Volker3ORCID,Kumkar Malte4,Riegel Harald1ORCID

Affiliation:

1. LaserApplicationCenter (LAZ), Aalen University, Aalen, Germany

2. Department of Machining Technology, Faculty of Mechanical Engineering (FST), University of West Bohemia, Pilsen, Czech Republic

3. Institut für Materialforschung Aalen (IMFAA), Aalen University, Aalen, Germany

4. TRUMPF Laser GmbH, Aichhalder Straße 39, Schramberg, Germany

5. New Technologies Research Centre (NTC), University of West Bohemia, Pilsen, Czech Republic

Abstract

Perforation of lithium-ion battery electrodes has recently become an increasing interest in science and industry. Perforated electrodes have shown improved electrochemical properties compared to conventional, nonperforated electrodes. It has been demonstrated that through perforation, the fast-charging capability and the lifetime of these batteries can be significantly improved. The electrodes for lithium-ion batteries consist of a copper foil onto which the electrode material is applied as a porous layer. This layer is mainly composed of active material particles, which are bound together by a binder phase. Here, synthetic graphite was used as an active material. Up to now, it has been shown that an advantageous and precise perforation geometry can be produced by ultrashort laser pulse ablation. Since the ablation volumes during perforation of the porous electrode material with ultrashort laser pulses are unusually high compared to solids, this work investigates the parameter dependency on the ablation mechanisms in detail. For this purpose, in particular, single-pulse ablation was investigated with respect to the ablation thresholds at different pulse durations. The pulse durations were varied over a large range from 400 fs to 20 ps. By varying the number of pulses per perforation up to 50 and the single-pulse energy up to 45  μJ, it could be shown that a homogeneous ablation down to the conductor foil through the 63  μm thick active material layer can be achieved.

Funder

Bundesministerium für Wirtschaft und Energie

Publisher

Laser Institute of America

Subject

Instrumentation,Biomedical Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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