Enhancing Methane Production from Food Waste via Anaerobic Digestion Using Waste-Derived Hydrogels: Improved VFA Conversion and Microbial Niche Formation

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Enhancing Methane Production from Food Waste via Anaerobic Digestion Using Waste-Derived Hydrogels: Improved VFA Conversion and Microbial Niche Formation
Title:
Enhancing Methane Production from Food Waste via Anaerobic Digestion Using Waste-Derived Hydrogels: Improved VFA Conversion and Microbial Niche Formation
Journal Title:
ACS Sustainable Chemistry & Engineering
Keywords:
Publication Date:
07 October 2025
Citation:
Tiong, Y. W., Shao, C., Xu, S., Luo, Y., Bu, J., Zhang, J., He, Y., & Tong, Y. W. (2025). Enhancing Methane Production from Food Waste via Anaerobic Digestion Using Waste-Derived Hydrogels: Improved VFA Conversion and Microbial Niche Formation. ACS Sustainable Chemistry & Engineering, 13(41), 17161–17172. https://doi.org/10.1021/acssuschemeng.5c04459
Abstract:
Anaerobic digestion (AD) offers a sustainable approach to food waste valorization through biogas production. Hydrogels, known for high water retention, porosity, and microbial compatibility, are increasingly explored as AD additives to enhance substrate diffusion, pH buffering, and microbial colonization. This study investigates waste-derived hydrogel materials, i.e., pure hydrogel (PH), biochar-hydrogel (BH), and LECA-hydrogel (LH), as multifunctional additives to enhance methane yield under varying organic loading rates (OLRs). At low OLR (0.3 g VS/L/d), BH40 (40 wt % biochar-hydrogel) achieved the highest methane yield (3.71 ± 0.21 L/g VS), producing 27.9% more methane than PH40 (40 wt % hydrogel) due to its buffering and conductive properties that supported syntrophic microbial activity and volatile fatty acids (VFAs) conversion. Conversely, at high OLR (0.9 g VS/L/d), PH40 yielded the highest methane (4.07 ± 0.28 L/g VS), attributed to improved pH stability and VFA utilization. Microbial analysis revealed PH40 enriched key methanogenic taxa, including Bacilli, Synergistia, and Cloacimonadia. Principal component analysis revealed hydrogel additives shaped distinct microbial communities, with PH40 promoting a methanogen-enriched cluster. Overall, this study highlights the novel use of waste-derived hydrogels as dual-function AD enhancers, demonstrating their cost-effective potential to improve methane yield while contributing to circular bioeconomy and sustainable waste-to-energy solutions.
License type:
Publisher Copyright
Funding Info:
National Research Foundation, Singapore, under the Intra-CREATE Thematic Grant 2020 Call 03 “Science of Sustainable Cities (Food)”. This research was also supported by the National Research Foundation, Prime Minister’s Office, Singapore under its Campus for Research Excellence and Technological Enterprise (CREATE) programme.
Description:
ISSN:
2168-0485
2168-0485
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