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Environmental Science & Technology|July 29, 2005
Removal of headspace CO2 increases biological hydrogen productionWooshin Park, Seung H Hyun, Sang-Eun Oh, et al.The ISME Journal|May 22, 2014
Hydrogenase-independent uptake and metabolism of electrons by the archaeon Methanococcus maripaludisSvenja T Lohner, Jörg S Deutzmann, Bruce E Logan, et al.Physical Chemistry Chemical Physics : PCCP|September 9, 2014
Specific ion effects on membrane potential and the permselectivity of ion exchange membranesGeoffrey M Geise, Harrison J Cassady, Donald R Paul, et al.Bioresource Technology|June 5, 2013
Power generation by packed-bed air-cathode microbial fuel cellsXiaoyuan Zhang, Juan Shi, Peng Liang, et al.Environmental Science & Technology|June 8, 2022
Thermodynamic and Kinetic Analyses of Ion Intercalation/Deintercalation Using Different Temperatures on NiHCF Electrodes for Battery Electrode DeionizationLe Shi, Xiangyu Bi, Evan Newcomer, et al.Water Research|March 14, 2026
Microbial electrosynthesis of methane in an up-scaled zero-gap cellBin Bian, Xinrui Ma, Sen Li, et al.Applied and Environmental Microbiology|April 7, 2009
Simultaneous cellulose degradation and electricity production by Enterobacter cloacae in a microbial fuel cellFarzaneh Rezaei, Defeng Xing, Rachel Wagner, et al.Bioresource Technology|November 4, 2015
Cooperative cathode electrode and in situ deposited copper for subsequent enhanced Cd(II) removal and hydrogen evolution in bioelectrochemical systemsQiang Wang, Liping Huang, Yuzhen Pan, et al.Biosensors & Bioelectronics|November 10, 2009
Variation of power generation at different buffer types and conductivities in single chamber microbial fuel cellsJoo-Youn Nam, Hyun-Woo Kim, Kyeong-Ho Lim, et al.Environmental Science & Technology|February 25, 2020
Improving the Thermodynamic Energy Efficiency of Battery Electrode Deionization Using Flow-Through ElectrodesMoon Son, Vineeth Pothanamkandathil, Wulin Yang, et al.Pageof 29