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Rapid Surface Modification of Stainless Steel 304L Electrodes for Microbial Electrochemical Sensor Application.
Yeo, Ryan Yow Zhong; Chin, Bin Hou; Hil Me, Muhammad Farhan; Chia, Jan Feng; Pham, Hai The; Othman, Ahmad Razi; Mohammad, Abdul Wahab; Ang, Wei Lun; Lim, Swee Su.
Affiliation
  • Yeo RYZ; Fuel Cell Institute, Universiti Kebangsaan Malaysia, 43600 Bangi, Selangor, Malaysia.
  • Chin BH; Department of Chemical and Process Engineering, Faculty of Engineering and Built Environment, Universiti Kebangsaan Malaysia, 43600 Bangi, Selangor, Malaysia.
  • Hil Me MF; Department of Applied Physics, Universiti Kebangsaan Malaysia, 43600 Bangi, Selangor, Malaysia.
  • Chia JF; Fuel Cell Institute, Universiti Kebangsaan Malaysia, 43600 Bangi, Selangor, Malaysia.
  • Pham HT; Department of Chemical and Process Engineering, Faculty of Engineering and Built Environment, Universiti Kebangsaan Malaysia, 43600 Bangi, Selangor, Malaysia.
  • Othman AR; Department of Microbiology and Center for Life Science Research (CELIFE), Faculty of Biology, VNU University of Science, Vietnam National University, Nguyen Trai 334, Thanh Xuan, Hanoi, Vietnam.
  • Mohammad AW; Department of Chemical and Process Engineering, Faculty of Engineering and Built Environment, Universiti Kebangsaan Malaysia, 43600 Bangi, Selangor, Malaysia.
  • Ang WL; Chemical and Water Desalination Program, College of Engineering, University of Sharjah, Sharjah 27272, United Arab Emirates.
  • Lim SS; Department of Chemical and Process Engineering, Faculty of Engineering and Built Environment, Universiti Kebangsaan Malaysia, 43600 Bangi, Selangor, Malaysia.
ACS Biomater Sci Eng ; 9(11): 6034-6044, 2023 11 13.
Article de En | MEDLINE | ID: mdl-37846081
ABSTRACT
Electrogenic microorganisms serve as important biocatalysts for microbial electrochemical sensors (MESes). The electrical signal produced is based on the rate of electron transfer between the microbes and electrodes, which represents the biotoxicity of water. However, existing MESes require complex and sophisticated fabrication methods. Here, several low-cost and rapid surface modification strategies (carbon powder-coated, flame-oxidized, and acid-bleached) have been demonstrated and studied for biosensing purposes. Surface-modified MESe bioanodes were successfully applied to detect multiple model pollutants including sodium acetate, ethanol, thinner, and palm oil mill effluent under three different testing sequences, namely, pollutant incremental, pollutant dumping, and water dilution tests. The carbon powder-coated bioanode showed the most responsive signal profile for all the three tests, which is in line with the average roughness values (Ra) when tested with atomic force microscopy. The carbon powder-coated electrode possessed a Ra value of 0.844, while flame-oxidized, acid-bleached, and control samples recorded 0.323, 0.336, and 0.264, respectively. The higher roughness was caused by the carbon coating and provided adhesive sites for microbial attachment and growth. The accuracy of MESe was also verified by correlating with chemical oxygen demand (COD) results. Similar to the sensitivity test, the carbon powder-coated bioanode obtained the highest R2 value of 0.9754 when correlated with COD results, indicating a high potential of replacing conventional water quality analysis methods. The reported work is of great significance to showcase facile surface modification techniques for MESes, which are cost-effective and sustainable while retaining the biocompatibility toward the microbial community with carbon-based coatings.
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Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Sujet principal: Acier inoxydable / Polluants environnementaux Langue: En Journal: ACS Biomater Sci Eng Année: 2023 Type de document: Article Pays d'affiliation: Malaisie

Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Sujet principal: Acier inoxydable / Polluants environnementaux Langue: En Journal: ACS Biomater Sci Eng Année: 2023 Type de document: Article Pays d'affiliation: Malaisie
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