Please use this identifier to cite or link to this item: https://doi.org/10.3390/ijms18020276
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dc.titleDevelopment and long-term stability of a novel microbial fuel cell BOD sensor with MNo2 catalyst
dc.contributor.authorKharkwal, S
dc.contributor.authorTan, Y.C
dc.contributor.authorLu, M
dc.contributor.authorNg, H.Y
dc.date.accessioned2020-09-14T08:06:58Z
dc.date.available2020-09-14T08:06:58Z
dc.date.issued2017
dc.identifier.citationKharkwal, S, Tan, Y.C, Lu, M, Ng, H.Y (2017). Development and long-term stability of a novel microbial fuel cell BOD sensor with MNo2 catalyst. International Journal of Molecular Sciences 18 (2) : 276. ScholarBank@NUS Repository. https://doi.org/10.3390/ijms18020276
dc.identifier.issn1661-6596
dc.identifier.urihttps://scholarbank.nus.edu.sg/handle/10635/176100
dc.description.abstractA novel microbial fuel cell (MFC)-based biosensor was designed for continuous monitoring of biochemical oxygen demand (BOD) in real wastewater. To lower the material cost, manganese dioxide (MnO2) was tested as an innovative cathode catalyst for oxygen reduction in a single chamber air-cathode MFC, and two different crystalline structures obtained during synthesis of MnO2 (namely β- and γ-MnO2) were compared. The BOD sensor was studied in a comprehensive way, using both sodium acetate solution and real domestic wastewater (DWW). The optimal performance of the sensor was obtained with a β-MnO2 catalyst, with R2 values of 0.99 and 0.98 using sodium acetate solution and DWW, respectively. The BOD values predicted by the β-MnO2 biosensor for DWW were in agreement with the BOD5 values, determined according to standard methods, with slight variations in the range from 3% to 12%. Finally, the long-term stability of the BOD biosensor was evaluated over 1.5 years. To the best of our knowledge, this is the first report of an MFC BOD sensor using an MnO2 catalyst at the cathode; the feasibility of using a low-cost catalyst in an MFC for online measurement of BOD in real wastewater broadens the scope of applications for such devices. © 2017 by the authors; licensee MDPI, Basel, Switzerland.
dc.sourceUnpaywall 20200831
dc.subjectmanganese oxide
dc.subjectmanganese derivative
dc.subjectmanganese dioxide
dc.subjectoxide
dc.subjectwaste water
dc.subjectArticle
dc.subjectbiochemical oxygen demand
dc.subjectbiosensor
dc.subjectcalibration
dc.subjectcatalyst
dc.subjectcyclic potentiometry
dc.subjectmicrobial fuel cell
dc.subjectmolecular stability
dc.subjectnonhuman
dc.subjectretention time
dc.subjectwaste water
dc.subjectbiochemical oxygen demand
dc.subjectbioenergy
dc.subjectcatalysis
dc.subjectchemistry
dc.subjectelectricity
dc.subjectgenetic procedures
dc.subjecttime factor
dc.subjectBioelectric Energy Sources
dc.subjectBiological Oxygen Demand Analysis
dc.subjectBiosensing Techniques
dc.subjectCalibration
dc.subjectCatalysis
dc.subjectElectricity
dc.subjectManganese Compounds
dc.subjectOxides
dc.subjectTime Factors
dc.subjectWaste Water
dc.typeArticle
dc.contributor.departmentCIVIL AND ENVIRONMENTAL ENGINEERING
dc.description.doi10.3390/ijms18020276
dc.description.sourcetitleInternational Journal of Molecular Sciences
dc.description.volume18
dc.description.issue2
dc.description.page276
dc.published.statePublished
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