Low Residual and Highly Efficient Plant Pathogen Control Technology Using Atmospheric Pressure Plasma Treated Solutions
Author:
Affiliation:
1. Graduate School of Engineering, Tohoku University
Publisher
Sumart Processing Society for Minerals, Environment and Energy
Link
https://www.jstage.jst.go.jp/article/jspmee/9/3/9_84/_pdf
Reference7 articles.
1. P. Lukes, E. Dolezalova, I. Sisrova, and M. Clupek: “Aqueous-phase chemistry and bactericidal effects from an air discharge plasma in contact with water: evidence for the formation of peroxynitrite through a pseudo-second-order post-discharge reaction of H2O2 and HNO2”, Plasma Sources Sci. Technol., 23(2014), 015019-1-15.
2. S.E. Hanbal, K. Takashima, S. Miyashita, S. Ando, K. Ito, M.M. Elsharkawy, T. Kaneko, and H. Takahashi: “Atmospheric-pressure plasma irradiation can disrupt tobacco mosaic virus particles and RNAs to inactivate their infectivity”, Arch. Virol., 163(2018), 2835-2840.
3. A. Ochi, H. Konishi, S. Ando, K. Sato, K. Yokoyama, S. Tsushima, S. Yoshida, T. Morikawa, T. Kaneko, and H. Takahashi: “Management of bakanae and bacterial seedling blight diseases in nurseries by irradiating rice seeds with atmospheric plasma”, Plant Pathology, 66 (2017), 67-76.
4. K. Shimada, K. Takashima, Y. Kimura, K. Nihei, H. Konishi, and T. Kaneko: “Humidification effect of air plasma effluent gas on suppressing conidium germination of a plant pathogenic fungus in the liquid phase”, Plasma Process. Polym., 17(2020), 1900004- 1-15.
5. S. Ikawa, A. Tani, Y. Nakashima, and K. Kitano: “Physicochemical properties of bactericidal plasma-treated water”, J. Phys. D: Appl. Phys., 49(2016), 425401-1-9.
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