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Bioresource Technology|August 11, 2020
Impact of cathodic electron acceptor on microbial fuel cell internal resistanceKathryn Lawson, Ruggero Rossi, John M Regan, et al.Environmental Science & Technology|May 28, 2014
Energy recovery from solutions with different salinities based on swelling and shrinking of hydrogelsXiuping Zhu, Wulin Yang, Marta C Hatzell, et al.Water Research|March 4, 2006
Inhibition of biohydrogen production by ammoniaMichael B Salerno, Wooshin Park, Yi Zuo, et al.Bioresource Technology|June 24, 2010
Long-term cathode performance and the microbial communities that develop in microbial fuel cells fed different fermentation endproductsPatrick D Kiely, Geoffrey Rader, John M Regan, et al.Water Research|August 13, 2010
Efficient recovery of nano-sized iron oxide particles from synthetic acid-mine drainage (AMD) water using fuel cell technologiesShaoan Cheng, Je-Hun Jang, Brian A Dempsey, et al.Environmental Science & Technology|March 3, 2007
Power generation using different cation, anion, and ultrafiltration membranes in microbial fuel cellsJung Rae Kim, Shaoan Cheng, Sang-Eun Oh, et al.Bioresource Technology|May 13, 2019
Applying the electrode potential slope method as a tool to quantitatively evaluate the performance of individual microbial electrolysis cell componentsBenjamin P Cario, Ruggero Rossi, Kyoung-Yeol Kim, et al.Chemsuschem|February 17, 2015
Enhancing low-grade thermal energy recovery in a thermally regenerative ammonia battery using elevated temperaturesFang Zhang, Nicole LaBarge, Wulin Yang, et al.International Journal of Systematic and Evolutionary Microbiology|July 24, 2014
Geobacter anodireducens sp. nov., an exoelectrogenic microbe in bioelectrochemical systemsDan Sun, Aijie Wang, Shaoan Cheng, et al.Journal of Biotechnology|October 16, 2013
Enhanced start-up of anaerobic facultatively autotrophic biocathodes in bioelectrochemical systemsZehra Zaybak, John M Pisciotta, Justin C Tokash, et al.Pageof 29