TY - JOUR
T1 - Electricity generation from an inorganic sulfur compound containing mining wastewater by acidophilic microorganisms
AU - Ni, Gaofeng
AU - Christel, Stephan
AU - Roman, Pawel
AU - Wong, Zhen Lim
AU - Bijmans, Martijn F.M.
AU - Dopson, Mark
N1 - Funding Information:
The research leading to these results has received funding from the European Union Seventh Framework Program (FP7/2012-2016) under grant agreement number 282970 (BioElectroMET). We thank our consortium members for comments on the manuscript. Sequencing was carried out at the National Genomics Infrastructure hosted by Science for Life Laboratory. Bioinformatic computations were performed on resources provided by SNIC through the Uppsala Multidisciplinary Center for Advanced Computational Science (UPPMAX) under project b2013127.
Publisher Copyright:
© 2016 The Authors
PY - 2016/9
Y1 - 2016/9
N2 - Sulfide mineral processing often produces large quantities of wastewaters containing acid-generating inorganic sulfur compounds. If released untreated, these wastewaters can cause catastrophic environmental damage. In this study, microbial fuel cells were inoculated with acidophilic microorganisms to investigate whether inorganic sulfur compound oxidation can generate an electrical current. Cyclic voltammetry suggested that acidophilic microorganisms mediated electron transfer to the anode, and that electricity generation was catalyzed by microorganisms. A cation exchange membrane microbial fuel cell, fed with artificial wastewater containing tetrathionate as electron donor, reached a maximum whole cell voltage of 72 ± 9 mV. Stepwise replacement of the artificial anolyte with real mining process wastewater had no adverse effect on bioelectrochemical performance and generated a maximum voltage of 105 ± 42 mV. 16S rRNA gene sequencing of the microbial consortia resulted in sequences that aligned within the genera Thermoplasma, Ferroplasma, Leptospirillum, Sulfobacillus and Acidithiobacillus. This study opens up possibilities to bioremediate mining wastewater using microbial fuel cell technology.
AB - Sulfide mineral processing often produces large quantities of wastewaters containing acid-generating inorganic sulfur compounds. If released untreated, these wastewaters can cause catastrophic environmental damage. In this study, microbial fuel cells were inoculated with acidophilic microorganisms to investigate whether inorganic sulfur compound oxidation can generate an electrical current. Cyclic voltammetry suggested that acidophilic microorganisms mediated electron transfer to the anode, and that electricity generation was catalyzed by microorganisms. A cation exchange membrane microbial fuel cell, fed with artificial wastewater containing tetrathionate as electron donor, reached a maximum whole cell voltage of 72 ± 9 mV. Stepwise replacement of the artificial anolyte with real mining process wastewater had no adverse effect on bioelectrochemical performance and generated a maximum voltage of 105 ± 42 mV. 16S rRNA gene sequencing of the microbial consortia resulted in sequences that aligned within the genera Thermoplasma, Ferroplasma, Leptospirillum, Sulfobacillus and Acidithiobacillus. This study opens up possibilities to bioremediate mining wastewater using microbial fuel cell technology.
KW - Acidophile
KW - Electricity generation
KW - Microbial fuel cell
KW - Mining
KW - Wastewater
UR - https://www.scopus.com/pages/publications/84974796855
U2 - 10.1016/j.resmic.2016.04.010
DO - 10.1016/j.resmic.2016.04.010
M3 - Article
C2 - 27155452
AN - SCOPUS:84974796855
SN - 0923-2508
VL - 167
SP - 568
EP - 575
JO - Research in Microbiology
JF - Research in Microbiology
IS - 7
ER -