CoFe-MOF nanoarray as flexible microelectrode for electrochemical detection of catechol in water samplesopen access
- Authors
- Arivuselvan, S.; Elancheziyan, Mari; Atchudan, Raji; Ranjith Kumar, Deivasigamani; Sivasurya, E.; Philomina Mary, S.; Muthirulan, Pandi; Won, Keehoon; Devaraj, Manoj
- Issue Date
- Oct-2024
- Publisher
- Elsevier Ltd
- Keywords
- Catechol; Cyclic voltammetry; Electrochemical sensor; Nanoarray microelectrode; Nonenzymatic sensor; Redox mediator; Water samples
- Citation
- Heliyon, v.10, no.20, pp 1 - 12
- Pages
- 12
- Indexed
- SCIE
SCOPUS
- Journal Title
- Heliyon
- Volume
- 10
- Number
- 20
- Start Page
- 1
- End Page
- 12
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/56188
- DOI
- 10.1016/j.heliyon.2024.e39241
- ISSN
- 2405-8440
2405-8440
- Abstract
- A simple, selective, and straightforward enzyme-free electrochemical sensor has been designed and developed using cobalt hexacyanoferrate metal-organic framework (CoFe-MOF) nanoarray. The prepared CoFe-MOF nanoarray has been successfully grown over a carbon cloth (CC) to form CoFe-MOF/CC as a flexible microelectrode for the detection of catechol. The surface of the activated CC was covered uniformly with CoFe-MOF in the form of nanoarray and exhibited double-shelled cubic morphology. The CoFe-MOF/CC nanoarray microelectrode showed a pair of well-defined redox peaks corresponding to the [Fe(CN)6]4-/3- redox signal. Interestingly, the fabricated nanoarray microelectrode has displayed superior peak current at lower onset potential with high electrochemical response compared to unmodified potassium hexacyanoferrate (K3 [Fe(CN)6]) over CC microelectrode and bare activated CC. Further, the developed CoFe-MOF/CC nanoarray microelectrode for the oxidation of catechol was examined with consecutive injections of catechol. A fast and noticeable improvement in oxidation peak current was observed, thus representing the excellent electrocatalytic oxidation of catechol at the modified nanoarray microelectrode. Besides, CoFe-MOF/CC microelectrode exhibits an excellent linear response over a concentration range from 0.005 to 2.8 mM with low detection limit (LOD) and high sensitivity of 0.002 mM (S/N = 3) and 205.99 μA/mM, respectively. Moreover, the prepared nonenzymatic sensor showed outstanding stability, acceptable reproducibility, and repeatability, along with good interference ability. Catechol in spiked water samples was successfully quantified. © 2024
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Collections - College of Engineering > Department of Chemical and Biochemical Engineering > 1. Journal Articles

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