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Trace-Level Phenolics Detection Based on Composite PAN-MWCNTs Nanofibers
Elif Merve Özer1, Roxana-Mihaela Apetrei1,2, Pinar Camurlu1
1Akdeniz University, Department of Chemistry, 07058, Antalya, Turkey.
Chembiochem : a European Journal of Chemical Biology
|July 1, 2022
Summary
A new biosensor using polyacrylonitrile nanofiber-carbon nanotube composites effectively detects toxic phenolic compounds in water. This advancement offers sensitive and accurate analytical methods for environmental and food safety monitoring.
Area of Science:
- Analytical Chemistry
- Materials Science
- Environmental Science
Background:
- Phenolic compounds pose significant toxicity risks (genotoxic, mutagenic, hepatotoxic).
- Sensitive and accurate detection methods are crucial for environmental monitoring, water quality control, and food safety.
- Existing analytical procedures require enhancement for detecting low concentrations of phenolics.
Purpose of the Study:
- To develop a novel biosensor for the sensitive and accurate detection of diphenols and monophenols.
- To utilize composite polyacrylonitrile nanofibrous assemblies enriched with multi-wall carbon nanotubes (PAN-MWCNTs NFs) as an immobilization platform.
- To immobilize tyrosinase onto the PAN-MWCNTs NFs for phenolic compound detection.
Main Methods:
- Fabrication of composite polyacrylonitrile nanofibrous assemblies enriched with multi-wall carbon nanotubes (PAN-MWCNTs NFs).
- Immobilization of tyrosinase onto the PAN-MWCNTs NFs platform.
- Development of a biosensor (Pt/PAN-MWCNTs/Tyr) for electrochemical detection of phenolic compounds.
- Testing the biosensor's sensitivity and limit of detection (LOD) for catechol, phenol, and p-chlorophenol.
Main Results:
- The Pt/PAN-MWCNTs/Tyr biosensor demonstrated high sensitivity for catechol detection (362.5 mA/M.cm²).
- Moderate sensitivity was observed for monophenols: phenol (14.79 mA/M.cm²) and p-chlorophenol (25.46 mA/M.cm²).
- The biosensor achieved nanomolar LOD values (4.42×10⁻⁹ M for catechol, 4.06×10⁻⁷ M for phenol, 1.05×10⁻⁷ M for p-chlorophenol), enabling trace detection.
Conclusions:
- The developed Pt/PAN-MWCNTs/Tyr biosensor is a highly sensitive and accurate platform for detecting phenolic compounds.
- This biosensor shows significant potential for monitoring water contamination and ensuring food quality.
- The use of PAN-MWCNTs NFs provides an effective immobilization strategy for enzyme-based biosensors.

