Development of portable sensor for the detection of bacteria: effect of gold nanoparticle size, effective surface area, and interparticle spacing upon sensing interface.
Creators
- 1. Nanotechnology Research Center, Sultan Qaboos University, Al-Khoud, P.O. Box 33, 123, Muscat, Oman.
- 2. Nanotechnology Research Center, Sultan Qaboos University, Al-Khoud, P.O. Box 33, 123, Muscat, Oman. htet@squ.edu.om.
- 3. Department of Physics, College of Science, Sultan Qaboos University, Al-Khoud, P.O. Box 36, 123, Muscat, Oman.
- 4. UNESCO Chair. Department of Marine Science and Fisheries, College of Agricultural & Marine Sciences, Sultan Qaboos University, Al-Khoud, P.O. Box 34, 123, Muscat, Oman.
- 5. Nanotechnology Research Center, Sultan Qaboos University, Al-Khoud, P.O. Box 33, 123, Muscat, Oman. alabri@squ.edu.om.
- 6. Department of Petroleum and Chemical Engineering, College of Engineering, Sultan Qaboos University, Al-Khoud, P.O. Box 33, 123, Muscat, Oman. alabri@squ.edu.om.
Description
In this study, systematic development of a portable sensor for the rapid detection of Escherichia coli (E. coli) and Exiguobacterium aurantiacum (E. aurantiacum) was reported. A conductive glass was utilized as a substrate and developed the electrode patterns on it. Trisodium citrate (TSC) and chitosan-stabilized gold nanoparticles (AuNPs) (CHI-AuNP-TSC) and chitosan-stabilized AuNPs (CHI-AuNP) were synthesized and utilized as a sensing interface. The morphology, crystallinity, optical properties, chemical structures, and surface properties of immobilized AuNPs on the sensing electrodes were investigated. The sensing performance of the fabricated sensor was evaluated by using an electrochemical method to observe the current changes in cyclic voltammetric responses. The CHI-AuNP-TSC electrode has higher sensitivity toward E. coli than CHI-AuNP with a limit of detection (LOD) of 1.07 CFU/mL. TSC in the AuNPs synthesis process played a vital role in the particle size, the interparticle spacing, the sensor's effective surface area, and the presence of CHI around AuNPs, thus enhancing the sensing performance. Moreover, post-analysis of the fabricated sensor surface exhibited the sensor stability and the interaction between bacteria and the sensor surface. The sensing results showed a promising potential for rapid detection using a portable sensor for various water and food-borne pathogenic diseases.
Open Access
Licence Attribution (CC BY)
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Publication Details
Journal article
Journal:
Discover nano
Publisher:
Springer Science and Business Media LLC
ISSN:
27319229
Volume:
18
Pages:
45
Persistent Identifiers
Funding
References
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