Sustainable Chemistry through Catalysis and Process Intensification
Author:
Affiliation:
1. Johan Gadolin Process Chemistry Centre, Laboratory of Industrial Chemistry and Reaction Engineering, Åbo Akademi University, 20500 Turku, Finland
Publisher
MDPI
Link
https://www.mdpi.com/2504-3900/92/1/76/pdf
Reference12 articles.
1. Aho, A., Alvear, M., Ahola, J., Kangas, J., Tanskanen, J., Simakova, I., Santos, J., Eränen, K., Salmi, T., and Murzin, D.Y. (2022). Aqueous phase reforming of birch and pine hemicellulose hydrolysates. Bioresour. Technol., 348.
2. Aho, A., Õna, J.P., Rosales, C., Eränen, K., Salmi, T., Murzin, D.Y., and Grénman, H. (2020). Biohydrogen from dilute side streams—Influence of reaction conditions on the conversion and selectivity in aqueous phase reforming of xylitol. Biomass Bioenergy, 138.
3. Aqueous phase reforming of alcohols over a bimetallic Pt-Pd catalyst in the presence of formic acid;Alvear;Chem. Eng. J.,2020
4. Aqueous phase reforming of xylitol and xylose in the presence of formic acid;Alvear;Catal. Sci. Technol.,2020
5. Advanced oxidation process for the removal of ibuprofen from aqueous solution: A non-catalytic and catalytic ozonation study in a semi-batch reactor;Saeid;Appl. Catal. B Environ.,2018
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