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February 21, 2026Journal of environmental chemical engineering0 citationsOpen Access

Multilayer graphene reshapes syntrophic interactions and enhances methane production during anaerobic digestion of food waste

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LLLijun LuoCLChirawit LeelayouthayotinFCFrancesco Di Capua

Key Points

  • This study explores the role of multilayer graphene in enhancing methane production during the anaerobic digestion of food waste.
  • Conducted batch anaerobic digestion experiments using multilayer graphene at dosages of 0, 1, 2.5, 5, and 10 g/L.
  • Monitored volatile fatty acid consumption and methane yields across varying graphene concentrations.
  • Analyzed the microbial community to assess shifts in key methanogenic populations.
  • MG supplementation improved methane yields compared to control reactors, with a 15% increase noted.
  • A dosage of 2.5 g/L was identified as the optimal concentration for maximizing methane production.
  • Higher doses than 2.5 g/L did not yield further significant increases in methane production (p > 0.05).
  • Microbial analysis indicated a shift in methanogenic populations, enhancing DIET-associated syntrophs.

Abstract

The efficiency of anaerobic digestion (AD) is often constrained by the kinetic bottleneck of interspecies hydrogen transfer. This study investigates multilayer graphene (MG), a conductive carbon material, as a strategy to promote direct interspecies electron transfer (DIET). Batch AD experiments were conducted with MG dosages of 0, 1, 2.5, 5, and 10 g/L. All MG-amended reactors demonstrated accelerated volatile fatty acid (VFA) consumption and higher methane yields compared to the control. However, a saturation effect was observed above 2.5 g/L, with no statistically significant increase in methane production (p > 0.05), establishing this concentration as the most resource-efficient dosage under the tested conditions. Microbial community analysis revealed a mechanistic shift: MG addition suppressed the hydrogenotrophic methanogen Methanoculleus while enriching the DIET-associated syntroph Syntrophomonas and mixotrophic Methanosarcina . These findings suggest that MG redirects metabolism from a sensitive hydrogen-based syntrophy to a more direct and resilient DIET pathway, providing a strong proof-of-concept for enhancing AD performance. • MG selectively accelerated methanogenesis, not hydrolysis or protein degradation • A 2.5 g/L dose maximized CH 4 production rate and shortened lag phase • Methane yield increased by15%, with performance saturating at a 2.5 g/L dosage • MG enriched DIET-syntroph Syntrophomonas and mixotroph Methanosarcina

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Cite This Study

Luo et al. (2026) studied this question.

synapsesocial.com/papers/69994b88873532290d01fa8dhttps://doi.org/10.1016/j.jece.2026.121872
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