Microbial Electrosynthesis: Feeding Microbes Electricity To Convert Carbon Dioxide and Water to Multicarbon Extracellular Organic Compounds

被引:772
作者
Nevin, Kelly P. [1 ]
Woodard, Trevor L. [1 ]
Franks, Ashley E. [1 ]
Summers, Zarath M. [1 ]
Lovley, Derek R. [1 ]
机构
[1] Univ Massachusetts, Dept Microbiol, Amherst, MA 01003 USA
来源
MBIO | 2010年 / 1卷 / 02期
关键词
REDUCTIVE DECHLORINATION; ANAEROBIC-BACTERIA; ELECTRON-DONOR; FUEL-CELLS; BIOFILMS; CULTURE; METHANE; CO2;
D O I
10.1128/mBio.00103-10
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
The possibility of providing the acetogenic microorganism Sporomusa ovata with electrons delivered directly to the cells with a graphite electrode for the reduction of carbon dioxide to organic compounds was investigated. Biofilms of S. ovata growing on graphite cathode surfaces consumed electrons with the reduction of carbon dioxide to acetate and small amounts of 2-oxobutyrate. Electrons appearing in these products accounted for over 85% of the electrons consumed. These results demonstrate that microbial production of multicarbon organic compounds from carbon dioxide and water with electricity as the energy source is feasible. IMPORTANCE Reducing carbon dioxide to multicarbon organic chemicals and fuels with electricity has been identified as an attractive strategy to convert solar energy that is harvested intermittently with photovoltaic technology and store it as covalent chemical bonds. The organic compounds produced can then be distributed via existing infrastructure. Nonbiological electrochemical reduction of carbon dioxide has proven problematic. The results presented here suggest that microbiological catalysts may be a robust alternative, and when coupled with photovoltaics, current-driven microbial carbon dioxide reduction represents a new form of photosynthesis that might convert solar energy to organic products more effectively than traditional biomass-based strategies.
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共 23 条
[1]   Comparison of hexamethyidisilazane and critical point drying treatments for SEM analysis of anaerobic biofilms and granular sludge [J].
Araujo, JC ;
Téran, FC ;
Oliveira, RA ;
Nour, EAA ;
Montenegro, MAP ;
Campos, JR ;
Vazoller, RF .
JOURNAL OF ELECTRON MICROSCOPY, 2003, 52 (04) :429-433
[2]   Kinetics of trichloroethene dechlorination and methane formation by a mixed anaerobic culture in a bio-electrochemical system [J].
Aulenta, Federico ;
Reale, Priscilla ;
Catervi, Alessandro ;
Panero, Stefania ;
Majone, Mauro .
ELECTROCHIMICA ACTA, 2008, 53 (16) :5300-5305
[3]  
Barton ColeE., 2010, Carbon Dioxide as Chemical Feedstock, P291
[4]   Opportunities and prospects in the chemical recycling of carbon dioxide to fuels [J].
Centi, Gabriele ;
Perathoner, Siglinda .
CATALYSIS TODAY, 2009, 148 (3-4) :191-205
[5]   Direct Biological Conversion of Electrical Current into Methane by Electromethanogenesis [J].
Cheng, Shaoan ;
Xing, Defeng ;
Call, Douglas F. ;
Logan, Bruce E. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2009, 43 (10) :3953-3958
[6]   THE CAPACITY OF HYDROGENOTROPHIC ANAEROBIC-BACTERIA TO COMPETE FOR TRACES OF HYDROGEN DEPENDS ON THE REDOX POTENTIAL OF THE TERMINAL ELECTRON-ACCEPTOR [J].
CORDRUWISCH, R ;
SEITZ, HJ ;
CONRAD, R .
ARCHIVES OF MICROBIOLOGY, 1988, 149 (04) :350-357
[7]   Old acetogens, new light [J].
Drake, Harold L. ;
Goessner, Anita S. ;
Daniel, Steven L. .
INCREDIBLE ANAEROBES: FROM PHYSIOLOGY TO GENOMICS TO FUELS, 2008, 1125 :100-128
[8]   Biofuel alternatives to ethanol: pumping the microbial well [J].
Fortman, J. L. ;
Chhabra, Swapnil ;
Mukhopadhyay, Aindrila ;
Chou, Howard ;
Lee, Taek Soon ;
Steen, Eric ;
Keasling, Jay D. .
TRENDS IN BIOTECHNOLOGY, 2008, 26 (07) :375-381
[9]   A review of the aqueous electrochemical reduction of CO2 to hydrocarbons at copper [J].
Gattrell, M. ;
Gupta, N. ;
Co, A. .
JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2006, 594 (01) :1-19
[10]   Remediation and recovery of uranium from contaminated subsurface environments with electrodes [J].
Gregory, KB ;
Lovley, DR .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2005, 39 (22) :8943-8947