Supercritical mechano-exfoliation process

The intricate balance among cost, output, and quality has substantially hindered the practical application of graphene within the downstream industry chain. Here we present a scalable and green supercritical CO 2 -assisted mechano-exfoliation (SCME) process that omits the use of organic solvents and...

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Veröffentlicht in:Nature communications 2024-10, Vol.15 (1), p.9329-10, Article 9329
Hauptverfasser: Zhang, Hao, Xiang, Qixuan, Liu, Zhiyuan, Zhang, Xianglong, Zhao, Yaping, Tan, Huijun
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Sprache:eng
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Zusammenfassung:The intricate balance among cost, output, and quality has substantially hindered the practical application of graphene within the downstream industry chain. Here we present a scalable and green supercritical CO 2 -assisted mechano-exfoliation (SCME) process that omits the use of organic solvents and oxidants throughout the production lifecycle, including exfoliation, separation, and purification. The SCME process achieves graphene powder space-time yields exceeding 40 kg/(m³·day) at laboratory (0.06–0.2 kg) and pilot scales (  >  4 kg), with resultant free-standing films showing conductivities up to 5.26 × 10⁵ S/m. Further kinetic investigations propose general guidelines for grinding-assisted exfoliation: (1) the macroscopic optimizing ability of mechanotechnics for mass transfer frequency and stress distribution and (2) the microscopic multiplication ability of exfoliation medium for shear-delamination. The comprehensive techno-economic analysis also underscores the economic viability of the SCME process for large-scale production. Here authors present a supercritical CO 2 -assisted mechano-exfoliation process that eliminates the need for organic solvents. Kinetic investigations offer general guidelines for optimising macroscopic mass transfer and microscopic shear-delamination in supercritical CO 2 systems.
ISSN:2041-1723
2041-1723
DOI:10.1038/s41467-024-53810-4