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Applied and Environmental Microbiology|April 27, 2002
Mechanisms for accessing insoluble Fe(III) oxide during dissimilatory Fe(III) reduction by Geothrix fermentansKelly P Nevin, Derek R LovleyCurrent Opinion in Biotechnology|February 22, 2011
A shift in the current: new applications and concepts for microbe-electrode electron exchangeDerek R Lovley, Kelly P NevinCurrent Opinion in Biotechnology|March 8, 2013
Electrobiocommodities: powering microbial production of fuels and commodity chemicals from carbon dioxide with electricityDerek R Lovley, Kelly P NevinFrontiers in Microbiology|December 9, 2014
Real-time monitoring of subsurface microbial metabolism with graphite electrodesColin Wardman, Kelly P Nevin, Derek R LovleyAdvances in Microbial Physiology|November 3, 2004
Dissimilatory Fe(III) and Mn(IV) reductionDerek R Lovley, Dawn E Holmes, Kelly P NevinFrontiers in Microbiology|March 6, 2015
Syntrophic growth via quinone-mediated interspecies electron transferJessica A Smith, Kelly P Nevin, Derek R LovleyInternational Journal of Systematic and Evolutionary Microbiology|September 25, 2004
Comparison of 16S rRNA, nifD, recA, gyrB, rpoB and fusA genes within the family Geobacteraceae fam. novDawn E Holmes, Kelly P Nevin, Derek R LovleyApplied and Environmental Microbiology|December 3, 2004
In situ expression of nifD in Geobacteraceae in subsurface sedimentsDawn E Holmes, Kelly P Nevin, Derek R LovleyApplied and Environmental Microbiology|June 6, 2003
Microorganisms associated with uranium bioremediation in a high-salinity subsurface sedimentKelly P Nevin, Kevin T Finneran, Derek R LovleyApplied and Environmental Microbiology|June 19, 2007
Lack of electricity production by Pelobacter carbinolicus indicates that the capacity for Fe(III) oxide reduction does not necessarily confer electron transfer ability to fuel cell anodesHanno Richter, Martin Lanthier, Kelly P Nevin, et al.Pageof 31