Ferric iron stimulation in marine SMFCs: Impact on the microbial structure evolution in contaminated sediments with low and high molecular weight PAHs

被引:8
作者
Hamdan, Hamdan Z. [1 ]
Salam, Darine A. [1 ]
机构
[1] Amer Univ Beirut, Maroun Semaan Fac Engn & Architecture, Dept Civil & Environm Engn, Beirut, Lebanon
关键词
PAHs; Sediment microbial fuel cells; Bioremediation; Iron stimulation; Microbial structure evolution; POLYCYCLIC AROMATIC-HYDROCARBONS; FUEL-CELLS; SP NOV; BIODEGRADATION; DEGRADATION; PERFORMANCE; BACTERIA; WATER; PYRENE; BIOREMEDIATION;
D O I
10.1016/j.jenvman.2020.111636
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The impact of ferric iron stimulation on the evolution of microbial structure in marine sediment microbial fuel cells (SMFCs), operated for the bioremediation of a complex mixture of low and high molecular weight PAHs (naphthalene, fluorene, pyrene and benzo(a)pyrene), was assessed. Microbial evolution profiles showed high relative abundances of exoelectrogenic iron-reducing bacteria throughout the biodegradation, namely Geo-alkalibacter, under ferric iron stimulation and anode reducing conditions, irrespective of sulfate reducing bacteria (SRB) inhibition. Highest PAHs removal was measured in the absence of anode reduction, under Fe stimulation and SRB inhibition, reaching 40.85% for benzo(a)pyrene, the most persistent PAH used in this study. Results suggest that amendment of contaminated sediment with ferric iron could constitute a better bioremediation strategy than using SMFCs. This becomes significant when considering the well-established and dominant indigenous SRB population in marine sediments that usually limits the performance of the anode as a terminal electron acceptor in marine SMFCs.
引用
收藏
页数:13
相关论文
共 69 条
[31]   Polycyclic aromatic hydrocarbons in surface waters and riverine sediments of the Hooghly and Brahmaputra Rivers in the Eastern and Northeastern India [J].
Khuman, Sanjenbam Nirmala ;
Chakraborty, Paromita ;
Cincinelli, Alessandra ;
Snow, Daniel ;
Kumar, Bhupander .
SCIENCE OF THE TOTAL ENVIRONMENT, 2018, 636 :751-760
[32]   Biodegradation of polycyclic aromatic hydrocarbons: Using microbial bioelectrochemical systems to overcome an impasse [J].
Kronenberg, Maria ;
Trably, Eric ;
Bernet, Nicolas ;
Patureau, Dominique .
ENVIRONMENTAL POLLUTION, 2017, 231 :509-523
[33]   Anaerobic biodegradation of polycyclic aromatic hydrocarbons with amendment of iron(III) in mangrove sediment slurry [J].
Li, Chun-Hua ;
Wong, Yuk-Shan ;
Tam, Nora Fung-Yee .
BIORESOURCE TECHNOLOGY, 2010, 101 (21) :8083-8092
[34]   Enriching distinctive microbial communities from marine sediments via an electrochemical-sulfide-oxidizing process on carbon electrodes [J].
Li, Shiue-Lin ;
Nealson, Kenneth H. .
FRONTIERS IN MICROBIOLOGY, 2015, 6
[35]   Surfactants selectively reallocated the bacterial distribution in soil bioelectrochemical remediation of petroleum hydrocarbons [J].
Li, Xiaojing ;
Zhao, Qian ;
Wang, Xin ;
Li, Yongtao ;
Zhou, Qixing .
JOURNAL OF HAZARDOUS MATERIALS, 2018, 344 :23-32
[36]   Cathodic microbial community adaptation to the removal of chlorinated herbicide in soil microbial fuel cells [J].
Li, Yue ;
Li, Xiaojing ;
Sun, Yang ;
Zhao, Xiaodong ;
Li, Yongtao .
ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2018, 25 (17) :16900-16912
[37]  
Linden O., 2008, INT OIL SPILL C P, P339, DOI [10.7901/2169-3358-2008-1-339., DOI 10.7901/2169-3358-2008-1-339]
[38]  
Lipps W C., 2018, Standard Methods Committee of the American Public Health Association, American Water Works Association, DOI [10.2105/SMWW.2882.023, DOI 10.2105/SMWW.2882.023]
[39]   Examination of microbial fuel cell start-up times with domestic wastewater and additional amendments [J].
Liu, Guangli ;
Yates, Matthew D. ;
Cheng, Shaoan ;
Call, Douglas F. ;
Sun, Dan ;
Logan, Bruce E. .
BIORESOURCE TECHNOLOGY, 2011, 102 (15) :7301-7306
[40]  
Logan B.E., 2008, Microbial Fuel Cells