Recent advancements in microbial fuel cells: A review on its electron transfer mechanisms, microbial community, types of substrates and design for bio …

S Prathiba, PS Kumar, DVN Vo - Chemosphere, 2022 - Elsevier
The development in urbanization, growth in industrialization and deficiency in crude oil
wealth has made to focus more for the renewable and also sustainable spotless energy …

Biochar-supported nZVI (nZVI/BC) for contaminant removal from soil and water: a critical review

S Wang, M Zhao, M Zhou, YC Li, J Wang, B Gao… - Journal of hazardous …, 2019 - Elsevier
The promising characteristics of nanoscale zero-valent iron (nZVI) have not been fully
exploited owing to intrinsic limitations. Carbon-enriched biochar (BC) has been widely used …

Extracellular electron transfer mechanisms between microorganisms and minerals

L Shi, H Dong, G Reguera, H Beyenal, A Lu… - Nature Reviews …, 2016 - nature.com
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 …

Anaerobic microbiologically influenced corrosion mechanisms interpreted using bioenergetics and bioelectrochemistry: a review

Y Li, D Xu, C Chen, X Li, R Jia, D Zhang… - Journal of Materials …, 2018 - Elsevier
Microbiologically influenced corrosion (MIC) is a major cause of corrosion damages, facility
failures, and financial losses, making MIC an important research topic. Due to complex …

The ins and outs of microorganism–electrode electron transfer reactions

A Kumar, LHH Hsu, P Kavanagh, F Barrière… - Nature Reviews …, 2017 - nature.com
Electron transfer between microorganisms and an electrode—even across long distances—
enables the former to live by coupling to an electronic circuit. Such a system integrates …

[HTML][HTML] Microbial fuel cells and their electrified biofilms

J Greenman, I Gajda, J You, BA Mendis, O Obata… - Biofilm, 2021 - Elsevier
Bioelectrochemical systems (BES) represent a wide range of different biofilm-based
bioreactors that includes microbial fuel cells (MFCs), microbial electrolysis cells (MECs) and …

Hydrochar-nanoparticle integration for arsenic removal from wastewater: Challenges, possible solutions, and future horizon

AK Khanzada, HE Al-Hazmi, B Śniatała… - Environmental …, 2023 - Elsevier
Arsenic (As) contamination poses a significant threat to human health, ecosystems, and
agriculture, with levels ranging from 12 to 75% attributed to mine waste and stream …

Distinguishing two different microbiologically influenced corrosion (MIC) mechanisms using an electron mediator and hydrogen evolution detection

D Wang, J Liu, R Jia, W Dou, S Kumseranee… - Corrosion …, 2020 - Elsevier
Carbon steel MIC (microbiologically influenced corrosion) and copper MIC by Desulfovibrio
vulgaris (a sulfate reducing bacterium) were shown to behave very differently. Carbon steel …

A comprehensive review of microbial electrochemical systems as a platform technology

H Wang, ZJ Ren - Biotechnology advances, 2013 - Elsevier
Microbial electrochemical systems (MESs) use microorganisms to covert the chemical
energy stored in biodegradable materials to direct electric current and chemicals. Compared …

Microbial electrochemistry and technology: terminology and classification

U Schröder, F Harnisch, LT Angenent - Energy & Environmental …, 2015 - pubs.rsc.org
Microbial electrochemistry is the study and application of interactions between living
microbial cells and electrodes (ie electron conductors, capacitive materials). For a long time …