Efficient Prevention of Aspergillus flavus Spores Spread in Air Using Plasmonic Ag-AgCl/α-Fe2O3 under Visible Light
Di Sun1, Jin Mao1, Hailian Wei1
1National Reference Laboratory for Agricultural Testing, Key Laboratory of Detection for Mycotoxins, Laboratory of Quality & Safety Risk Assessment for Oilseed Products (Wuhan), Quality Inspection & Test Center for Oilseed Products, Key Laboratory of Biology and Genetic Improvement of Oil Crops, Ministry of Agriculture, Oil Crops Research Institute, Chinese Academy of Agricultural Sciences, Wuhan 430062, China.
Abstract:
Aspergillus flavus is a kind of widespread fungi that can produce carcinogenic, teratogenic, and mutagenic secondary metabolites known as aflatoxins. Aspergillus flavus mainly spread through the means of fungal spores in air, thus preventing the spores spread is an effective strategy to control aflatoxins contamination from source. Herein, a rapid and efficient control way to prevent the spread of Aspergillus flavus spores in air was demonstrated. Ag-AgCl nanoparticles were combined with tetrahedral α-Fe2O3 to form plasmonic composites that presented 93.65 ± 1.53% prevention rate of Aspergillus flavus spores under 50 min visible light irradiation. The efficient activity was attributed to the synergy effect of Ag including intrinsic disinfection, electron sink, and localized surface plasmon resonance effect, which were proven by photoelectric characterization, density functional theory, and finite difference time domain methods. The calculated work functions of α-Fe2O3, Ag, and AgCl were 3.71, 4.52, and 5.38 eV, respectively, which could accelerate photoinduced carrier transfer through Ag during photoreaction. Moreover, it was found that the intrinsic disinfection of Ag and hydroxyl radical from photocatalytic reaction were the main factors to the prevention of Aspergillus flavus spores, which resulted in the destruction of spore structure and the leakage of intracellular protein with 62.15 ± 2.63 μg mL-1. Most important, it was proven that the composites also showed high activity (90.52 ± 1.26%) to prevent Aspergillus flavus spore spread in the storage process of peanuts. These findings not only provided useful information for an efficient and potential strategy to prevent Aspergillus flavus contamination but also could be as a reference in toxic fungi control.
Insights
A novel Ag-AgCl nanoparticle and iron oxide composite effectively prevents Aspergillus flavus spore spread using visible light. This photocatalytic approach offers a promising strategy for controlling fungal contamination in food products like peanuts.
Area of Science:
- Materials Science
- Nanotechnology
- Photocatalysis
- Mycology
Background:
- Aspergillus flavus is a widespread fungus producing toxic aflatoxins.
- Aflatoxin contamination poses significant health risks (carcinogenic, teratogenic, mutagenic).
- Preventing fungal spore dispersal is crucial for controlling contamination at the source.
Purpose of the Study:
- To develop a rapid and efficient method for preventing Aspergillus flavus spore spread.
- To investigate the efficacy of Ag-AgCl nanoparticles combined with tetrahedral α-Fe2O3 plasmonic composites.
- To understand the underlying mechanisms of photocatalytic fungal spore inactivation.
Main Methods:
- Synthesis of Ag-AgCl nanoparticles combined with tetrahedral α-Fe2O3.
- Testing the prevention rate of Aspergillus flavus spores under visible light irradiation.
- Employing photoelectric characterization, density functional theory, and finite difference time domain methods to elucidate the mechanism.
Main Results:
- The plasmonic composite achieved a 93.65 ± 1.53% prevention rate of Aspergillus flavus spores within 50 minutes of visible light exposure.
- Synergistic effects of silver (intrinsic disinfection, electron sink, LSPR) and photocatalysis were identified as key factors.
- Demonstrated high efficacy (90.52 ± 1.26%) in preventing spore spread during peanut storage.
Conclusions:
- The developed Ag-AgCl/α-Fe2O3 composite offers an efficient and potential strategy for controlling Aspergillus flavus contamination.
- The study provides insights into photocatalytic mechanisms for toxic fungal control.
- This approach serves as a valuable reference for managing airborne fungal pathogens.


