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Biotechnology and Bioengineering|November 13, 2004
Physical and hydrodynamic properties of flocs produced during biological hydrogen productionJian-jun Zhang, Xiao-yan Li, Sang-Eun Oh, et al.ACS Applied Materials & Interfaces|November 22, 2012
Polymer separators for high-power, high-efficiency microbial fuel cellsGuang Chen, Bin Wei, Yong Luo, et al.Chemsuschem|December 3, 2016
Integrating Reverse-Electrodialysis Stacks with Flow Batteries for Improved Energy Recovery from Salinity Gradients and Energy StorageXiuping Zhu, Taeyoung Kim, Mohammad Rahimi, et al.Water Research|March 4, 2014
Electrochemical struvite precipitation from digestate with a fluidized bed cathode microbial electrolysis cellRoland D Cusick, Mark L Ullery, Brian A Dempsey, et al.Bioresource Technology|September 20, 2021
Comparison of different chemical treatments of brush and flat carbon electrodes to improve performance of microbial fuel cellsEmmanuel U Fonseca, Wulin Yang, Xu Wang, et al.Environmental Science & Technology|June 22, 2002
Biological hydrogen production measured in batch anaerobic respirometersBruce E Logan, Sang-Eun Oh, In S Kim, et al.Bioresource Technology|November 14, 2006
Electricity generation and microbial community analysis of alcohol powered microbial fuel cellsJung Rae Kim, Sok Hee Jung, John M Regan, et al.Chemsuschem|February 8, 2026
Modeling Zero-Gap Saltwater Electrolysis With Advective Flow Through a Thin-Film Composite MembraneRachel F Taylor, Chenghan Xie, Bin Bian, et al.Nano Letters|January 25, 2012
Vertically grown multiwalled carbon nanotube anode and nickel silicide integrated high performance microsized (1.25 μL) microbial fuel cellJustine E Mink, Jhonathan P Rojas, Bruce E Logan, et al.Bioresource Technology|September 10, 2019
Application of phase-pure nickel phosphide nanoparticles as cathode catalysts for hydrogen production in microbial electrolysis cellsKyoung-Yeol Kim, Susan E Habas, Joshua A Schaidle, et al.Pageof 29