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Applied and Environmental Microbiology|May 22, 2012
Enrichment of microbial electrolysis cell biocathodes from sediment microbial fuel cell bioanodesJohn M Pisciotta, Zehra Zaybak, Douglas F Call, et al.Bioresource Technology|May 24, 2011
Examination of microbial fuel cell start-up times with domestic wastewater and additional amendmentsGuangli Liu, Matthew D Yates, Shaoan Cheng, et al.ACS Sustainable Chemistry & Engineering|July 3, 2019
Correction to Comparison of Nonprecious Metal Cathode Materials for Methane Production by ElectromethanogenesisMichael Siegert, Matthew D Yates, Douglas F Call, et al.Applied Microbiology and Biotechnology|July 16, 2010
Anodic biofilms in microbial fuel cells harbor low numbers of higher-power-producing bacteria than abundant generaPatrick D Kiely, Douglas F Call, Matthew D Yates, et al.ACS Sustainable Chemistry & Engineering|April 18, 2014
Comparison of Nonprecious Metal Cathode Materials for Methane Production by ElectromethanogenesisMichael Siegert, Matthew D Yates, Douglas F Call, et al.Bioresource Technology|June 18, 2010
Anode microbial communities produced by changing from microbial fuel cell to microbial electrolysis cell operation using two different wastewatersPatrick D Kiely, Roland Cusick, Douglas F Call, et al.The ISME Journal|May 11, 2012
Convergent development of anodic bacterial communities in microbial fuel cellsMatthew D Yates, Patrick D Kiely, Douglas F Call, et al.Water Research|July 30, 2020
Asymmetrical removal of sodium and chloride in flow-through capacitive deionizationYazeed Algurainy, Douglas F CallThe Science of the Total Environment|March 19, 2021
Developing microbial communities containing a high abundance of exoelectrogenic microorganisms using activated carbon granulesQiwen Cheng, Douglas F CallEnvironmental Science. Processes & Impacts|June 29, 2016
Hardwiring microbes via direct interspecies electron transfer: mechanisms and applicationsQiwen Cheng, Douglas F CallPageof 29