A short review of graphene in the microbial electrosynthesis of biochemicals from carbon dioxide. [PDF]
Chen LF, Yu H, Zhang J, Qin HY.
europepmc +1 more source
Facial Synthesis, Stability, and Interaction of Ti3C2Tx@PC Composites for High-Performance Biocathode Microbial Electrosynthesis Systems. [PDF]
Khan AR +7 more
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Microbial electrosynthesis of acetate from CO2 in three-chamber cells with gas diffusion biocathode under moderate saline conditions. [PDF]
Dessì P +9 more
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Microbial electrosynthesis with Clostridium ljungdahlii benefits from hydrogen electron mediation and permits a greater variety of products. [PDF]
Boto ST +3 more
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Microbial Electrosynthesis Inoculated with Anaerobic Granular Sludge and Carbon Cloth Electrodes Functionalized with Copper Nanoparticles for Conversion of CO2 to CH4. [PDF]
Georgiou S +7 more
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The data files support the study “Electromethanogenesis from H₂S-containing biogas: H₂S and cathode potential drive microbial selection and methane yields.” They correspond to two H-type microbial electrosynthesis (MES) reactors (1 L cathodic volume ...
NTAGIA, Eleftheria
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Bioadaptive Ni single atoms unlock high rate microbial electrosynthesis of isopropanol from CO<sub>2</sub>. [PDF]
Zhou G +13 more
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Reducing Oxygen Stress and Improving Hydrogen Availability Boosts Microbial Electrosynthesis by Clostridium ljungdahlii. [PDF]
Kuchenbuch A +6 more
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Microbial electrosynthesis (MES) can uniquely couple production and recovery of products such as acetic acid from CO2. We demonstrate that an acetic acid concentration of up to 13.5 g L-1 (225 mM) can be achieved (Figure 1A), the highest reported for MES.
Prévoteau, Antonin +7 more
core
A two-stage strategy for methanogenesis suppression and rapid acetogenic biofilm formation in microbial electrosynthesis. [PDF]
Ferretti J +3 more
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