Department of Electrical Engineering, Faculty of Engineering, and ‡Department of Agronomy, Faculty of Agriculture, Kasetsart University , 50 Ngam Wong Wan Road, Ladyao, Chatuchak, Bangkok 10900, Thailand.
ACS Appl Mater Interfaces. 2016 Aug 3;8(30):19268-75. doi: 10.1021/acsami.6b04555. Epub 2016 Jul 20.
We designed a system to produce atmospheric hybrid cold-discharge plasma (HCP) based on microcorona discharge on a single dielectric barrier and applied it to inactivate microorganisms that commonly attach the rice seed husk. The cold-plasma treatment modified the surface of the rice seeds, resulting in accelerated germination and enhanced water imbibition. The treatment can operate under air-based ambient conditions without the need for a vacuum. The cold-plasma treatment completely inactivated pathogenic fungi and other microorganisms, enhancing the germination percentage and seedling quality. The final germination percentage of the treated rice seeds was ∼98%, whereas that of the nontreated seeds was ∼90%. Microcorona discharge on a single dielectric barrier provides a nonaggressive cold plasma that can be applied to organic materials without causing thermal and electrical damage. The hybrid nonthermal plasma is cost effective and consumes relatively little power, making it suitable for the surface sterilization and disinfection of organic and biological materials with large-scale compatibility.
我们设计了一种基于单个电介质阻挡上的微电晕放电产生大气混合冷放电等离子体(HCP)的系统,并将其应用于灭活通常附着在水稻种子外壳上的微生物。冷等离子体处理改变了水稻种子的表面,导致其加速发芽和增强吸水。该处理可以在基于空气的环境条件下运行,无需真空。冷等离子体处理完全灭活了病原菌真菌和其他微生物,提高了发芽率和幼苗质量。经处理的水稻种子的最终发芽率约为 98%,而未经处理的种子的发芽率约为 90%。单个电介质阻挡上的微电晕放电提供了一种非侵蚀性的冷等离子体,可以应用于有机材料而不会造成热和电损伤。混合非热等离子体具有成本效益,消耗的功率相对较小,因此适用于具有大规模兼容性的有机和生物材料的表面灭菌和消毒。