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An Enhanced Photosensitive Sensor Based on ITO/MWCNTs@Polymer Composite@BiVO4 for Quercetin Detection
İrem Sarikaya1, Esra Kaleoğlu2, Soner Çakar2,3
1Department of Chemistry, Faculty of Science, Sakarya University, Serdivan 54050, Türkiye.
A novel photosensitive sensor using multi-walled carbon nanotubes, a polymer composite, and BiVO4 was developed for detecting quercetin, a natural antioxidant. This sensor offers high sensitivity and stability for analyzing quercetin in real samples like black tea.
Area of Science:
- Materials Science
- Electrochemistry
- Analytical Chemistry
Background:
- Antioxidants combat free radicals, but synthetic forms pose cancer risks, necessitating natural sources.
- Quercetin is a beneficial natural antioxidant found in various food sources.
- Developing sensitive and selective methods for quercetin detection is crucial for health and food analysis.
Purpose of the Study:
- To fabricate a novel photosensitive sensor for accurate quercetin detection.
- To utilize multi-walled carbon nanotubes (MWCNTs), a polymer composite (PC), and BiVO4 for sensor construction.
- To evaluate the sensor's performance characteristics and applicability to real-world samples.
Main Methods:
- Fabrication of a photosensitive ITO/MWCNTs@PC@BiVO4 electrode.
- Electrochemical analysis of quercetin in phosphate buffered saline (PBS) solutions.
- Testing sensor selectivity, reproducibility, stability, and application in black tea samples.
Main Results:
- The sensor exhibited a wide linear response range (10-200 μM) with a low limit of detection (0.133 μM).
- Achieved high sensitivity (442 µA mM⁻¹ cm⁻²), good reproducibility (RSD 3.6%), high selectivity, and long-term stability (>49 days).
- Successfully detected quercetin in a real-life sample (black tea).
Conclusions:
- The developed photosensitive ITO/MWCNTs@PC@BiVO4 sensor is effective for sensitive and selective quercetin detection.
- This sensor platform shows promise for developing advanced photosensitive polymer composite polyphenol sensors.
- The study highlights the potential of natural antioxidants and advanced sensor technology for health and food safety applications.
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