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Editorial

Recent Trends in Biogenic Gas, Waste and Wastewater Fermentation

1
Department of Water Supply, Sanitation and Environmental Engineering, IHE Delft Institute for Water Education, Westvest 7, P.O. Box 3015, 2601 DA Delft, The Netherlands
2
Chemical Engineering Laboratory, Faculty of Sciences and Center for Advanced Scientific Research—Centro de Investigaciones Científicas Avanzadas (CICA), BIOENGIN Group, University of La Coruña (UDC), E-15008 La Coruña, Spain
*
Author to whom correspondence should be addressed.
Fermentation 2022, 8(8), 347; https://doi.org/10.3390/fermentation8080347
Submission received: 18 July 2022 / Accepted: 20 July 2022 / Published: 23 July 2022
(This article belongs to the Special Issue Recent Trends in Biogenic Gas, Waste and Wastewater Fermentation)

Abstract

In recent years, the optimization of bioprocesses for the removal of pollutants from industrial biogenic gas emissions, waste and wastewater has been the focus of intensive research. Recently developed technologies not only aim to remove such pollutants, but also to valorize them, whenever possible, through their bioconversion into useful added-value products. In this domain of progressive research, lab-, pilot-, and demonstration-scale studies are dealing with the fermentation of biogenic gases (e.g., CO2, CO, and CH4), waste or wastewater to produce a range of biofuels and valuable products, based on the activity of pure or mixed cultures of native or recombinant aerobic and anaerobic bacteria, algae, or yeasts as biocatalysts. Waste can also be converted to syngas, which can subsequently be fermented as well. A broad range of bioproducts can be obtained, e.g., biofuels and several other platform chemicals and products. This environmentally-friendly biorefinery approach addresses the need to build modern societies according to the concept of a circular economy, and yields products of commercial interest. Different examples of such approaches are described in this collection of scientific reports.
Keywords: acetogenic bacteria; biomass; biorefinery; carbon dioxide; constructed wetlands; greenhouse gas; syngas; waste; wastewater; oleaginous yeast acetogenic bacteria; biomass; biorefinery; carbon dioxide; constructed wetlands; greenhouse gas; syngas; waste; wastewater; oleaginous yeast

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MDPI and ACS Style

Rene, E.R.; Veiga, M.C.; Kennes, C. Recent Trends in Biogenic Gas, Waste and Wastewater Fermentation. Fermentation 2022, 8, 347. https://doi.org/10.3390/fermentation8080347

AMA Style

Rene ER, Veiga MC, Kennes C. Recent Trends in Biogenic Gas, Waste and Wastewater Fermentation. Fermentation. 2022; 8(8):347. https://doi.org/10.3390/fermentation8080347

Chicago/Turabian Style

Rene, Eldon R., María C. Veiga, and Christian Kennes. 2022. "Recent Trends in Biogenic Gas, Waste and Wastewater Fermentation" Fermentation 8, no. 8: 347. https://doi.org/10.3390/fermentation8080347

APA Style

Rene, E. R., Veiga, M. C., & Kennes, C. (2022). Recent Trends in Biogenic Gas, Waste and Wastewater Fermentation. Fermentation, 8(8), 347. https://doi.org/10.3390/fermentation8080347

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