Electrons can be transferred from microorganisms to multivalent metal ions that are associated with minerals and vice versa. As the microbial cell envelope is neither physically …
S Zheng, M Li, Y Liu, F Liu - Water Research, 2021 - Elsevier
Geobacter, as a typical electroactive microorganism, is the “engine” of interspecies electron transfer (IET) between microorganisms. However, it does not have a dominant position in all …
N Kip, JA Van Veen - The ISME journal, 2015 - academic.oup.com
Corrosion is the result of a series of chemical, physical and (micro) biological processes leading to the deterioration of materials such as steel and stone. It is a world-wide problem …
Microbial fuel cells (MFCs) are recognized as a future technology with a unique ability to exploit metabolic activities of living microorganisms for simultaneous conversion of chemical …
S Choi - Biosensors and Bioelectronics, 2015 - Elsevier
The next generation of sustainable energy could come from microorganisms; evidence that it can be seen with the given rise of Electromicrobiology, the study of microorganisms' …
The six years that have passed since the publication of the first edition have brought significant advances in both biofilm research and biofilm engineering, which have matured …
MJ Angelaalincy, R Navanietha Krishnaraj… - Frontiers in Energy …, 2018 - frontiersin.org
Microbial fuel cells (MFCs) are emerging as a promising future technology for a wide range of applications in addition to sustainable electricity generation. Electroactive (EA) biofilms …
Transforming organic waste directly into electricity or indirectly into sources of hydrogen fuel is credible through exoelectrogen microorganisms grown on the anode or cathode that …
The efficiency of anaerobic digestion could be increased by promoting microbial retention through biofilm development. The inclusion of certain types of biofilm carriers has …