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Alavitabari, S., Brassard, D., Ponton, S., Boudreault, R., Girard-Lauriault, P.-L., & Tavares, J. R. (2026). Boosting the Atmospheric Water Harvesting of Carbon Xerogels by CO₂ Physical Activation: Effect of Pyrolysis Conditions. Industrial & Engineering Chemistry Research, 65(3), 1664-1678. Lien externe
Alavitabari, S., Ponton, S., Roncière, M. R. C., Boudreault, R., Girard-Lauriault, P.-L., & Tavares, J. R. (2026). From Surface to Bulk Activation: Tailoring the Porosity and Surface Chemistry of Resorcinol‐Formaldehyde Carbon Sorbents for Atmospheric Water Harvesting. Advanced Materials Interfaces, e70645 (13 pages). Lien externe
Alavitabari, S., Ponton, S., Yoshikawa, M., Gaboriaud, R., Boudreault, R., Girard-Lauriault, P.-L., & Tavares, J. R. (2026). Heteroatom‐Engineered Porous Carbon Sorbents for Atmospheric Water Harvesting Under Arid Conditions. Advanced Sustainable Systems, 10(8). Lien externe
Alavitabari, S., Ponton, S., Roncière, M. R. C., Boudreault, R., Girard-Lauriault, P.-L., & Tavares, J. R. (2026). From Surface to Bulk Activation: Tailoring the Porosity and Surface Chemistry of Resorcinol‐Formaldehyde Carbon Sorbents for Atmospheric Water Harvesting. Advanced Materials Interfaces, e70645 (13 pages). Lien externe
Alavitabari, S., Ponton, S., Yoshikawa, M., Gaboriaud, R., Boudreault, R., Girard-Lauriault, P.-L., & Tavares, J. R. (2026). Heteroatom‐Engineered Porous Carbon Sorbents for Atmospheric Water Harvesting Under Arid Conditions. Advanced Sustainable Systems, 10(8). Lien externe