DOAJ Open Access 2025

A laser-enabled low carbon emission pyrometallurgical approach to recycle Li-ion batteries via silicothermic reductions

James Chen Ruby Zhang Maciej Podlesny Tyler Smith Chao Shi +1 lainnya

Abstrak

In response to the growing shift from graphite to silicon in Li-ion battery anodes, we propose a novel low-carbon pyrometallurgical recycling method that uses silicon as the reducing agent. Silicon was chosen as the reductant because, as the emerging high-capacity anode material, it not only integrates seamlessly with next-generation battery chemistries but also offers a substantially lower carbon footprint than conventional carbon-based reducing agents. The thermodynamics and reaction mechanism between LiCoO2 and Si are investigated using differential thermal and thermogravimetric analyses. The reaction products are characterized by scanning electron microscopy, energy-dispersive X-ray spectroscopy, and X-ray diffraction. When heated to 1500 °C, LiCoO2 undergoes simultaneous decomposition and melting, reacting with Si to produce cobalt spheres. Through a laser-enabled recycling process for only 30 s with a laser power of 2 kW, LiCoO2 is reduced via silicothermic reaction to a Co–Si alloy with only a small amount of slag (Li2SiO3 and Li2Co(SiO4)). This successful use of silicon paves the way for a cleaner, more sustainable battery recycling strategy.

Penulis (6)

J

James Chen

R

Ruby Zhang

M

Maciej Podlesny

T

Tyler Smith

C

Chao Shi

J

Jian Li

Format Sitasi

Chen, J., Zhang, R., Podlesny, M., Smith, T., Shi, C., Li, J. (2025). A laser-enabled low carbon emission pyrometallurgical approach to recycle Li-ion batteries via silicothermic reductions. https://doi.org/10.1016/j.hazl.2025.100160

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Informasi Jurnal
Tahun Terbit
2025
Sumber Database
DOAJ
DOI
10.1016/j.hazl.2025.100160
Akses
Open Access ✓