Meat quality assessment using Au patch electrode Ag-SnO2/SiO2/Si MIS capacitive gas sensor at room temperature
Mukut Senapati1, Partha P Sahu1
1Department of ECE, Tezpur University, Napaam, 784028 Tezpur, Assam, India.
Food Chemistry
|April 29, 2020
Summary
A new sensor rapidly detects chicken meat spoilage by identifying volatile compounds. This technology offers a quick, portable, and affordable method for assessing meat quality at room temperature.
Area of Science:
- * Materials Science and Sensor Technology
- * Food Science and Technology
- * Analytical Chemistry
Background:
- * Traditional methods for assessing meat spoilage, such as TVB-N, TVC, and pH analysis, are time-consuming and complex.
- * There is a need for rapid, accurate, and portable methods for on-site quality assessment of perishable foods like chicken meat.
- * Volatile compounds like ammonia (NH3), trimethylamine (TMA), ethanol, and hydrogen sulfide (H2S) are key indicators of meat spoilage.
Purpose of the Study:
- * To design and develop a novel Metal-Insulator-Semiconductor (MIS) capacitive sensor for detecting low concentrations of volatile compounds associated with chicken meat spoilage.
- * To evaluate the sensor's performance at room temperature for rapid quality assessment.
- * To correlate the sensor's readings with established meat quality parameters and sensory evaluations.
Main Methods:
- * Fabrication of an Au patch electrode Ag-SnO2/SiO2/Si MIS capacitive sensor integrated with a microcontroller.
- * Sensing of volatile compounds (NH3, TMA, ethanol, H2S) generated from chicken meat spoilage at room temperature.
- * Calibration and validation of the sensor against standard methods (TVB-N, TVC, pH) and sensory analysis.
Main Results:
- * The developed sensor successfully detected volatile compounds in the ppb to ppm range from spoiled chicken meat.
- * The sensor provided a rapid response (55 seconds) indicative of meat spoilage status.
- * Quality thresholds determined by the sensor correlated highly with established methods, identifying acceptance limits for chicken meat stored at different temperatures (e.g., 105h at 4°C, 48h at 15°C, 17h at 25°C).
Conclusions:
- * The fabricated MIS capacitive sensor offers a portable, inexpensive, and rapid solution for on-site quality assessment of meat spoilage.
- * The sensor technology shows promise for real-time monitoring of food quality, reducing reliance on lengthy traditional analysis.
- * This approach enables accurate and timely decision-making regarding food safety and consumption.


