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Analytical Chemistry|October 24, 1998
Detection of heavy metal ions at femtomolar levels using protein-based biosensorsI Bontidean, C Berggren, G Johansson, et al.Applied and Environmental Microbiology|December 8, 2005
Interactions between the Fe(III)-reducing bacterium Geobacter sulfurreducens and arsenate, and capture of the metalloid by biogenic Fe(II)F S Islam, R L Pederick, A G Gault, et al.Geobiology|February 17, 2010
Arsenic release and attenuation in low organic carbon aquifer sediments from West BengalM Héry, B E Van Dongen, F Gill, et al.The Plant Cell|April 18, 1998
Mutations in the gene encoding starch synthase II profoundly alter amylopectin structure in pea embryosJ Craig, J R Lloyd, K Tomlinson, et al.Nanotechnology|October 25, 2011
Control of nanoparticle size, reactivity and magnetic properties during the bioproduction of magnetite by Geobacter sulfurreducensJ M Byrne, N D Telling, V S Coker, et al.Environmental Science & Technology|January 30, 2007
XAS and XMCD evidence for species-dependent partitioning of arsenic during microbial reduction of ferrihydrite to magnetiteV S Coker, A G Gault, C I Pearce, et al.Geobiology|April 21, 2012
Characterisation of the dissimilatory reduction of Fe(III)-oxyhydroxide at the microbe-mineral interface: the application of STXM-XMCDV S Coker, J M Byrne, N D Telling, et al.Nanotechnology|March 20, 2013
Ex situ formation of metal selenide quantum dots using bacterially derived selenide precursorsJ W Fellowes, R A D Pattrick, J R Lloyd, et al.Npj Materials Degradation|March 20, 2025
Insights into long term glass corrosion mechanisms from the Ballidon experimentC L Thorpe, A J Fisher, G Manifold, et al.Applied and Environmental Microbiology|October 6, 2005
Reduction of uranium(VI) phosphate during growth of the thermophilic bacterium Thermoterrabacterium ferrireducensT V Khijniak, A I Slobodkin, V Coker, et al.Pageof 6