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Self-standing Electrochemical Set-up to Enrich Anode-respiring Bacteria On-site
Published on: July 24, 2018
Simultaneous bioelectricity generation and selective copper recovery via controlled two-step discharge strategy in a
Jun Hyun Kim1, Hyeong Jae Kim2, Dong Hun Lee3
1Department of Bioscience, Biotechnology, Konkuk University, Seoul 05029, South Korea; Department of Biological Science, Chonnam National University, Gwangju 61186, South Korea.
Abstract:
Microbial fuel cells (MFCs) are bioelectrochemical systems that generate electricity through the microbial oxidation of organic substrates and offer potential for concurrent pollutant remediation. The anode potentials associated with common substrates are typically near - 0.3 V (vs. standard hydrogen electrode (SHE) at pH 7.0), making electricity generation feasible when paired with a cathodic reaction exhibiting a sufficiently positive potential. In this study, we developed two-chamber MFCs that simultaneously generate electricity and remove dissolved cupric ion (Cu(II)) from unbuffered copper catholyte. At an initial Cu(II) concentration of 10.0 mM, the system achieved 99.0% dissolved Cu(II) removal, and the cathodic coulombic efficiency (cathodic CE) reached 85.0%. Conversely, lower initial Cu(II) concentrations (5.0 and 2.5 mM) resulted in lower cathodic CEs (57.7% and 69.6%, respectively), which is consistent with a less-developed secondary discharge stage. The open-circuit voltage was ∼ 640.0 mV, and the maximum power density reached 553.1 mW/m2 when 10 mM Cu(II) catholyte was used. During operation, the catholyte pH increased from 4.8 to 8.1, indicating dissolved Cu(II) removal. Scannig electron microscope (SEM)/energy Dispersive X-ray Spectroscopy (EDS), X-ray diffraction (XRD), and X-ray photoelectron spectroscopy (XPS) analyses revealed the presence of deposits containing both Cu(0) and Cu2O, supporting a two-step reduction process wherein Cu2O forms during the primary discharge stage and is further reduced to Cu(0) during the secondary stage.
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