4.7 Review

Conductive materials as fantastic toolkits to stimulate direct interspecies electron transfer in anaerobic digestion: new insights into methanogenesis contribution, characterization technology, and downstream treatment

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JOURNAL OF ENVIRONMENTAL MANAGEMENT
卷 326, 期 -, 页码 -

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ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
DOI: 10.1016/j.jenvman.2022.116732

关键词

Anaerobic digestion; Conductive material; Direct interspecies electron transfer; Methanogenesis; Characterization techniques; Downstream processing

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This review addresses the gaps in the understanding of the methanogenesis contribution, characterization techniques, and downstream processes of conductive materials (CMs)-led direct interspecies electron transfer (DIET) in anaerobic digestion (AD). It reveals that the stimulation of methanogenesis cannot be solely attributed to DIET and emphasizes the importance of accurate characterization methods for identifying the interactions involved in syntrophic metabolism. The type of CMs also significantly affects AD downstream processes. Establishing a mathematical model for DIET is identified as a central bottleneck in understanding its mechanism in greater depth.
Direct interspecies electron transfer (DIET) stimulated by conductive materials (CMs) enables intercellular metabolic coupling that can address the unfavorable thermodynamical dilemma inherent in anaerobic digestion (AD). Although the DIET mechanism and stimulation have been extensively summarized, the methanogenesis contribution, characterization techniques, and downstream processes of CMs-led DIET in AD are surprisingly under-reviewed. Therefore, this review aimed to address these gaps. First, the contribution of CMs-led DIET to methanogenesis was re-evaluated by comparing the effect of various factors, including volatile fatty acids, free ammonia, and functional enzymes. It was revealed that AD systems are usually intricate and cannot allow the methanogenesis stimulation to be singularly attributed to the establishment of DIET. Additionally, considerable attention has been attached to the characterization of DIET occurrence, involving species identification, gene expression, electrical properties, cellular features, and syntrophic metabolism, suggesting the significance of accurate characterization methods for identifying the syntrophic metabolism interactions. Moreover, the type of CMs has a significant impact on AD downstream processes involving biogas purity, sludge dewaterability, and biosolids management. Finally, the central bottleneck consists in building a mathematical model of DIET to explain the mechanism of DIET in a deeper level from kinetics and thermodynamics.

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