Turkey Tail, Yun Zhi · 2014 · Research Article
Low relevanceAmperometric catechol biosensor based on laccase immobilized on nitrogen-doped ordered mesoporous carbon (N-OMC)/PVA matrix.
Trametes versicolor
Key points
- A functionalized nitrogen-containing ordered mesoporous carbon (N-OMC), which shows good electrical properties, was synthesized by the carbonization of polyaniline inside a SBA-15 mesoporous silica template
- Based on this, through entrapping laccase onto the N-OMC/polyvinyl alcohol (PVA) film a facilely fabricated amperometric biosensor was developed
- The results indicated that the N-OMC modified electrode exhibits electrical properties towards catechol
- The optimum experimental conditions of a biosensor for the detection of catechol were studied in detail
- Under the optimal conditions, the sensitivity of the biosensor was 0.29 A*M -1 with a detection limit of 0.31 μ M and a linear detection range from 0.39 μ M to 8.98 μ M for catechol
- The calibration curve followed the Michaelis-Menten kinetics and the apparent Michaelis-Menten [Formula: see text] was 6.28 μ M. This work demonstrated that the N-OMC/PVA composite provides a suitable support for laccase immobilization and the construction of a biosensor
Metadata-grounded summary
Citation abstract
A functionalized nitrogen-containing ordered mesoporous carbon (N-OMC), which shows good electrical properties, was synthesized by the carbonization of polyaniline inside a SBA-15 mesoporous silica template. Based on this, through entrapping laccase onto the N-OMC/polyvinyl alcohol (PVA) film a facilely fabricated amperometric biosensor was developed. Laccase from Trametes versicolor was assembled on a composite film of a N-OMC/PVA modified Au electrode and the electrochemical behavior was investigated. The results indicated that the N-OMC modified electrode exhibits electrical properties towards catechol. The optimum experimental conditions of a biosensor for the detection of catechol were studied in detail. Under the optimal conditions, the sensitivity of the biosensor was 0.29 A*M -1 with a detection limit of 0.31 μ M and a linear detection range from 0.39 μ M to 8.98 μ M for catechol. The calibration curve followed the Michaelis-Menten kinetics and the apparent Michaelis-Menten [Formula: see text] was 6.28 μ M. This work demonstrated that the N-OMC/PVA composite provides a suitable support for laccase immobilization and the construction of a biosensor.
Citation
Guo M, Wang H, Huang D, Han Z, Li Q, Wang X, et al. (2014). Amperometric catechol biosensor based on laccase immobilized on nitrogen-doped ordered mesoporous carbon (N-OMC)/PVA matrix. Science and technology of advanced materials https://doi.org/10.1088/1468-6996/15/3/035005 PMID: 27877681
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