Effect of Cold Atmospheric Pressure Plasma on Maize Seeds: Enhancement of Seedlings Growth and Surface Microorganisms Inactivation

被引:0
作者
Anna Zahoranová
Lucia Hoppanová
Juliana Šimončicová
Zlata Tučeková
Veronika Medvecká
Daniela Hudecová
Barbora Kaliňáková
Dušan Kováčik
Mirko Černák
机构
[1] Comenius University,Department of Experimental Physics, Faculty of Mathematics, Physics and Informatics
[2] Slovak University of Technology,Institute of Biochemistry and Microbiology, Faculty of Chemical and Food Technology
来源
Plasma Chemistry and Plasma Processing | 2018年 / 38卷
关键词
Cold atmospheric pressure plasma; Maize seed; Inactivation; Filamentous fungi; Germination enhancement;
D O I
暂无
中图分类号
学科分类号
摘要
Cold atmospheric pressure ambient air plasma generated by Diffuse Coplanar Surface Barrier Discharge (DCSBD) was investigated for inhibition of native microbiota and potentially dangerous pathogens (Aspergillus flavus, Alternaria alternata and Fusarium culmorum) on the maize surface. Moreover, the improvement of germination and growth parameters of maize seeds was evaluated. Maize (Zea mays L.; cv. Ronaldinio), one of the most important cultivated crops worldwide, was selected as the research material. Electrical measurements confirmed the high volume power density (80 W cm−3) of DCSBD plasma. Non-equilibrium plasma state evaluated using optical emission spectroscopy showed values of vibrational and rotational temperature (2700 ± 300) K and (370 ± 75) K, respectively. Changes on the plasma treated seeds surface were studied by water contact angle measurement, scanning electron microscope analysis and Fourier transform infrared spectroscopy. A complete devitalisation of native microbiota on the surface of seeds was observed after a short treatment time of 60 s (bacteria) and 180 s (filamentous fungi). The plasma treatment efficiency of artificially contaminated maize seeds was estimated as a reduction of 3.79 log (CFU/g) in F. culmorum after a 60-s plasma treatment, 4.21 log (CFU/g) in A. flavus and 3.22 log (CFU/g) in A. alternata after a 300-s plasma treatment. Moreover, the obtained results show an increase in wettability, resulting in a better water uptake and in an enhancement of growth parameters. The investigated DCSBD plasma source provides significant technical advantages and application potential for seed surface finishing without the use of hazardous chemicals.
引用
收藏
页码:969 / 988
页数:19
相关论文
共 154 条
[1]  
Fridman G(2008)Applied plasma medicine Plasma Process Polym 5 503-400
[2]  
Friedman G(2005)Low temperature plasma-based sterilization: overview and state-of-the-art Plasma Processes Polym 2 391-684
[3]  
Gutsol A(2012)The inactivation of Salmonella by cold atmospheric plasma treatment Food Res Int 45 678-238
[4]  
Laroussi M(2012)Cold atmospheric pressure plasma treatment of ready-to-eat meat: inactivation of Food Microbiol 30 233-71
[5]  
Fernández A(2014) and changes in product quality Planet Space Sci 90 60-30
[6]  
Thompson A(2006)Cold atmospheric plasma—a new technology for spacecraft component decontamination Spectrochim Acta B 61 2-701
[7]  
Rød SK(2004)Atmospheric pressure plasmas: a review Seed Sci Technol 32 693-1718
[8]  
Hansen F(2000)The stimulatory effect of non-equilibrium (low temperature) air plasma pretreatment on light-induced germination of Crop Sci 40 1706-183
[9]  
Leipold F(2000) seeds IEEE Trans Plasma Sci 28 180-497
[10]  
Knøchel S(2012)Modification of seed germination performance through cold plasma chemistry technology Biologia 67 490-623