Results 151 to 160 of about 5,779 (185)
A Comprehensive Approach to Nanotechnology Innovations in Biogas Production: Advancing Efficiency and Sustainability. [PDF]
Mateescu C, Nicula NO, Lungulescu EM.
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A novel strategy combining hydrogenotrophic methanogens' bioaugmentation and biochar biostimulation for simultaneous polycyclic aromatic hydrocarbon biodegradation and bioenergy recovery. [PDF]
Tang R, Zhang M, Li X.
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Nonelectroactive clostridium obtains extracellular electron transfer-capability after forming chimera with Geobacter. [PDF]
Liu X +7 more
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Distribution of methane-cycling archaea in buried ridge flank sediment: community zonation, activity, and potential environmental drivers. [PDF]
Lever MA, Morono Y, Inagaki F, Teske AP.
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Elastic Deformation of Cellulose/Lignin-Based Anode for Rejuvenating Aged Mix-Cultured Electroactive Biofilms. [PDF]
Liu X +15 more
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Journal of Hazardous Materials, 2021
Although it has been demonstrated that one-dimensional, two-dimensional, and three-dimensional carbon nanomaterials can improve the CH4 production of anaerobic digestion (AD), the effect of zero-dimensional carbon nanomaterials on AD have not been reported.
Li, Yeqing +9 more
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Although it has been demonstrated that one-dimensional, two-dimensional, and three-dimensional carbon nanomaterials can improve the CH4 production of anaerobic digestion (AD), the effect of zero-dimensional carbon nanomaterials on AD have not been reported.
Li, Yeqing +9 more
openaire +3 more sources
Bioresource Technology, 2022
Direct interspecies electron transfer (DIET) is a syntrophic mechanism for electron transfer between exo- and endoelectrogens. Previous studies have demonstrated that methanogenesis performance was significantly improved via the DIET mechanism through conductive materials (CMs) under batch conditions with a single substrate, while that under continuous
Sang-Hoon, Lee +4 more
openaire +2 more sources
Direct interspecies electron transfer (DIET) is a syntrophic mechanism for electron transfer between exo- and endoelectrogens. Previous studies have demonstrated that methanogenesis performance was significantly improved via the DIET mechanism through conductive materials (CMs) under batch conditions with a single substrate, while that under continuous
Sang-Hoon, Lee +4 more
openaire +2 more sources

