Please use this identifier to cite or link to this item: https://ptsldigital.ukm.my/jspui/handle/123456789/784743
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dc.rights.licenseTertakluk kepada Dasar Akses Terbuka Tesis dan Disertasi IPT Malaysiaen_US
dc.contributor.advisorAng Wei Lun, Dr.en_US
dc.contributor.advisorLim Swee Su, Dr.en_US
dc.contributor.authorRyan Yeo Yow Zhong (P126713)en_US
dc.date.accessioned2026-09-08T02:27:37Z-
dc.date.available2026-09-08T02:27:37Z-
dc.date.issued2026-02-04-
dc.identifier.otherP126713en_US
dc.identifier.urihttps://ptsldigital.ukm.my/jspui/handle/123456789/784743-
dc.descriptionFull-texten_US
dc.description.abstractBioelectrochemical sensors are a class of biosensors that use microbial metabolism to convert chemical signals from an analyte into a measurable electrical signal. Currently, conventional wastewater monitoring methods rely on chemical analysis, which are time consuming, costly, and typically performed off-site. Hence, bioelectrochemical sensors are a perfect candidate to address this issue due to their ability to provide rapid feedback on the presence of pollutants through electricity production. In this work, a two-electrode microbial electrochemical sensor (MESe) with modified anodes (carbon powder-coated, flame oxidised, acid bleached) were developed and tested against multiple pollutants. MESe with carbon powder-coated anode achieved the highest accuracy (R2) in the pollutant test ranging from 0.5891 to 0.9754 when correlated with chemical oxygen demand (COD) data. However, MESe often encountered signal issues due to blockages between the anode and cathode. To address this, a tubular-type MFCSe with modified air-cathodes (0.5 – 2.0 mg cm-2 PtC loading rate) was proposed to improve the MESe design, which demonstrated higher accuracy even without external power supply. MFCSe with 1.5 mg cm-2 PtC obtained the highest accuracy ranging from 0.8248 to 0.9655 when correlated with COD data. Cloud platform with alarm notification system was established to allow real-time online monitoring and two mathematical models (anomaly detection and change point detection) were integrated with the notification system to allow unmanned supervision. The MFCSe, along with its alarm notification system, was successfully deployed at an actual municipal wastewater treatment facility. This comprehensive system demonstrated its capability to detect and send an alarm for various operational scenarios, including fresh and diluted influent, mechanical disturbances, and surrounding noises.en_US
dc.language.isoenen_US
dc.publisherUKM, Bangien_US
dc.relationFuel Cell Institute / Institut Sel Fuelen_US
dc.rightsAkses Terbuka/Open Accessen_US
dc.subjectUniversiti Kebangsaan Malaysia -- Dissertationsen_US
dc.subjectDissertations, Academic -- Malaysiaen_US
dc.subjectBioelectrochemicalen_US
dc.subjectBiosensorsen_US
dc.titleDesign and development of real-time bioelectrochemical sensor for wastewater monitoring with integrated alarm notificationen_US
dc.typeThesesen_US
dc.rights.holderUniversiti Kebangsaan Malaysiaen_US
dc.description.notese-tesisen_US
dc.format.pages168en_US
dc.format.degreePh.Den_US
dc.description.categoryofthesesAccess Terbuka/Open Accessen_US
Appears in Collections:Fuel Cell Institute / Institut Sel Fuel



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