4.5 Article

Biocathode electrochemical activity and reduction characteristics of Cr(VI) system in microbial fuel cells

Related references

Note: Only part of the references are listed.
Article Engineering, Environmental

Improving surface properties of cathode and increasing abundance of autotrophic bacteria for chromium reduction with amino functionalized carbon nanotubes

Xiaodi Yu et al.

Summary: This study improved the adhesion and enrichment of chromium-reducing bacteria on the electrode surface by modifying the conductive cathode. The modified electrode showed high chromate ions adsorption capacity and chromium reducing efficiency in the sediment microbial fuel cell. This work provides a new strategy for bioremediation of heavy metals.

JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING (2022)

Article Chemistry, Physical

Elevated Cr(VI) reduction in a biocathode microbial fuel cell without acclimatization inversion based on strain Corynebacterium vitaeruminis LZU47-1

Shuai Zhao et al.

Summary: A biocathode MFC based on Corynebacterium vitaeruminis LZU47-1 was constructed for hexavalent chromium reduction without acclimatization inversion, resulting in significantly increased power generation and chromium removal efficiency compared to conventional methods. This study provides a convenient and highly effective method for enhancing power output and Cr(VI) reduction in biocathode MFCs.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2021)

Article Engineering, Environmental

Microbial Community Predicts Functional Stability of Microbial Fuel Cells

Keaton Larson Lesnik et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2020)

Article Engineering, Environmental

Removal of hexavalent chromium in dual-chamber microbial fuel cells separated by different ion exchange membranes

Heming Wang et al.

JOURNAL OF HAZARDOUS MATERIALS (2020)

Article Engineering, Environmental

Bacterial Vesicles Mediate Extracellular Electron Transfer

Xing Liu et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY LETTERS (2020)

Review Green & Sustainable Science & Technology

Microbial fuel cells: An overview of current technology

Anthony J. Slate et al.

RENEWABLE & SUSTAINABLE ENERGY REVIEWS (2019)

Article Engineering, Environmental

Two-stage chromium isotope fractionation during microbial Cr(VI) reduction

Guojun Chen et al.

WATER RESEARCH (2019)

Article Environmental Sciences

Exploration of the reduction mechanism of Cr(VI) in anaerobic hydrogen fermenter

Xin Zheng et al.

ENVIRONMENTAL POLLUTION (2019)

Article Chemistry, Multidisciplinary

Comparative Study of Electrochemical Performance and Microbial Flora in Microbial Fuel Cells by Using Three Kinds of Substrates

Zhao Yu et al.

CHEMICAL RESEARCH IN CHINESE UNIVERSITIES (2019)

Article Engineering, Environmental

Simultaneous Cr(VI) reduction and bioelectricity generation in a dual chamber microbial fuel cell

Meng Li et al.

CHEMICAL ENGINEERING JOURNAL (2018)

Article Chemistry, Physical

Hydrogen sulfide removal from biogas by biotrickling filter inoculated with Halothiobacillus neapolitanus

Nunthaphan Vikromvarasiri et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2017)

Article Agricultural Engineering

Pollutant removal and microorganism evolution of activated sludge under ofloxacin selection pressure

Qiang Kong et al.

BIORESOURCE TECHNOLOGY (2017)

Review Thermodynamics

Recent progress in the direct liquefaction of typical biomass

Hua-jun Huang et al.

PROGRESS IN ENERGY AND COMBUSTION SCIENCE (2015)

Article Chemistry, Physical

Metals as electron acceptors in single-chamber microbial fuel cells

Yan Li et al.

JOURNAL OF POWER SOURCES (2014)

Article Biotechnology & Applied Microbiology

Sulfur bacteria in wastewater stabilization ponds periodically affected by the 'red-water' phenomenon

Abdelaziz Belila et al.

APPLIED MICROBIOLOGY AND BIOTECHNOLOGY (2013)

Article Chemistry, Physical

Crumpled graphene particles for microbial fuel cell electrodes

Li Xiao et al.

JOURNAL OF POWER SOURCES (2012)

Article Engineering, Environmental

Copper Recovery Combined with Electricity Production in a Microbial Fuel Cell

Annemiek Ter Heijne et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2010)

Article Engineering, Environmental

Biological Chromium(VI) Reduction in the Cathode of a Microbial Fuel Cell

Madan Tandukar et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2009)

Article Biotechnology & Applied Microbiology

Cathodic reduction of hexavalent chromium [Cr(VI)] coupled with electricity generation in microbial fuel cells

Gang Wang et al.

BIOTECHNOLOGY LETTERS (2008)

Article Engineering, Environmental

Quantification of the Internal Resistance Distribution of Microbial Fuel Cells

Yanzhen Fan et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2008)

Article Chemistry, Multidisciplinary

Nanostructured polyanifine/titanium dioxide composite anode for microbial fuel cells

Yan Qiao et al.

ACS NANO (2008)

Article Engineering, Environmental

Power generation using different cation, anion, and ultrafiltration membranes in microbial fuel cells

Jung Rae Kim et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2007)

Article Electrochemistry

Increased performance of single-chamber microbial fuel cells using an improved cathode structure

S Cheng et al.

ELECTROCHEMISTRY COMMUNICATIONS (2006)

Review Engineering, Environmental

Microbial fuel cells: Methodology and technology

Bruce E. Logan et al.

ENVIRONMENTAL SCIENCE & TECHNOLOGY (2006)

Article Engineering, Chemical

Transport of hexavalent chromium through anion-exchange membranes

Y Çengeloglu et al.

DESALINATION (2003)

Article Biotechnology & Applied Microbiology

Bioremediation of chromate: thermodynamic analysis of the effects of Cr(VI) on sulfate-reducing bacteria

B Chardin et al.

APPLIED MICROBIOLOGY AND BIOTECHNOLOGY (2002)