| Literature DB >> 34945478 |
Vladimír Scholtz1, Jana Jirešová1, Božena Šerá2, Jaroslav Julák3.
Abstract
Cereals, an important food for humans and animals, may carry microbial contamination undesirable to the consumer or to the next generation of plants. Currently, non-thermal plasma (NTP) is often considered a new and safe microbicidal agent without or with very low adverse side effects. NTP is a partially or fully ionized gas at room temperature, typically generated by various electric discharges and rich in reactive particles. This review summarizes the effects of NTP on various types of cereals and products. NTP has undisputed beneficial effects with high potential for future practical use in decontamination and disinfection.Entities:
Keywords: active particles; decontamination; electrical discharge; food contamination
Year: 2021 PMID: 34945478 PMCID: PMC8701285 DOI: 10.3390/foods10122927
Source DB: PubMed Journal: Foods ISSN: 2304-8158
The effect of NTP on naturally and artificially introduced microorganisms on cereal seeds.
| Plant | Pathogen Name (and Source) | Plasma Apparatus | References | |
|---|---|---|---|---|
| Common Wheat | bacteria— | dielectric barrier discharge system (60 Hz, 44 kV, 56.5 W, air) | [ | |
| bacteria—artificially contaminated | atmospheric pressure dielectric barrier discharge (argon as a working gas, 8 kV, 10 kHz, or pulse frequency 5–15 kHz, pulse voltage 6–10 kV, Ar) | [ | ||
| bacteria—artificially deposited | low pressure plasma circulating fluidized bed reactor (13.56 MHz, 8–12.8 mbar, oxygen gas admixture) | [ | ||
| fungi—artificial inoculation with | low pressure cold plasma prototype unit (1 kHz, 20 kV, 500 mTorr, 300 W, air or SF6) | [ | ||
| fungi— | diffuse coplanar surface barrier discharge (14 kHz, 20 kV, 400 W, air) | [ | ||
| fungi—artificial inoculation with | planar geometry capacitively coupled plasma reactor (5.28 MHz, 200 Pa, 0.025 W cm−3, air) | [ | ||
| fungi (native microflora) | low pressure argon plasma produced by plasma-enhanced chemical vapor deposition (600–850 V) | [ | ||
| native microflora; artificial—bacteria— | dielectric barrier discharge closed system (80 kV, 50 Hz, air) | [ | ||
| native microflora | dielectric barrier discharge closed system (80 kV, 50 Hz, air) | [ | ||
| fungi—natural contamination— | reactor with a packed bed (8 kV, 100 Hz–83 kHz, air) | [ | ||
| insecta— | dielectric barrier discharge device (10 kV, 13 kHz, air) | [ | ||
| insecta— | dielectric barrier discharge (1–10 kV, 50 Hz) | [ | ||
| insecta— | stationary pressure plasma jet based on a dielectric barrier discharge (13.56 MHz, 90–130 W, argon, oxygen/argon, nitrogen/argon mixtures) | [ | ||
| insecta— | cold plasma (argon, 800 V) | [ | ||
| cv. Eva | fungi—artificial— | diffuse coplanar surface barrier discharge (14 kHz, 20 kV, 400 W, air) | [ | |
| Rice | inoculation with fungi— | atmospheric plasma apparatus—inductively coupled plasma (20 kV, c. 10 kHz, air) | [ | |
| fungi— | active oxygen species produced by the combination of atmospheric plasma (7–10 kV, 10 kHz) and UV light in ambient air | [ | ||
| natural mesophilic aerobic bacteria and yeast and molds of rice germ | large-scale plasma jet-pulsed light-ultraviolet (UV)-C system (2 kW, 1 kV, 30 Hz, air) | [ | ||
| var. | fungi— | ozone and arc discharge plasma (10–15 kV, 3 Hz, water) | [ | |
| used term: brown rice | native microflora—aerobic bacteria, yeasts and molds | corona discharge plasma jet under atmospheric pressure conditions (20 kV DC, 1.5 A, air) | [ | |
| var. | seed-borne fungi | dielectric barrier discharge (~ 14 kVpp, ~700 Hz, air + Ar) | [ | |
| Maize | fungi—artificial inoculation with | low pressure cold plasma prototype unit (1 kHz, 20 kV, 500 mTorr, 300 W, air or SF6) | [ | |
| fungi— | planar geometry capacitively coupled plasma reactor (5.28 MHz, 200 Pa, 0.025 W cm−3, air) | [ | ||
| fungi— | atmospheric pressure plasma jet (5–10 kV, 18–25 kHz, max. 855 W, air and nitrogen) | [ | ||
| fungi— | afterglow of a surface-wave microwave discharge (25 W, 2–8 mbar, Ar-O2, N2-O2) | [ | ||
| cv. Ronaldinio | fungi— | diffuse coplanar surface barrier discharge (14 kHz, 20 kV, 80 W cm−3, air) | [ | |
| var. | seed-borne fungi | glow discharge plasma (15 Pa, 200 W, air) | [ | |
| Barley | fungi—artificial inoculation with | low pressure cold plasma prototype unit (1 kHz, 20 kV, 500 mTorr, 300 W, air or SF6) | [ | |
| fungi— | diffuse coplanar surface barrier discharge (14 kHz, 20 kV, 400 W, air) | [ | ||
| native microflora, artificial—bacteria— | dielectric barrier discharge closed system (80 kV, 50 Hz, air) | [ | ||
| fungi— | afterglow of a surface-wave microwave discharge (25 W, 2–8 mbar, Ar-O2, N2-O2) | [ | ||
| seed-borne fungi | glow discharge plasma (15 Pa, 100 W, air) | [ | ||
| fungi— | diffuse coplanar surface barrier discharge (15 kHz, 20 kV, 350 W, air, CO2, CO2 + O2) | [ | ||
| bacteria— | plasma-processed air generated by microwave discharge (2.45 GHz, 4 kW, air) | [ | ||
| Rye | fungi—artificial inoculation with | low pressure cold plasma prototype unit (1 kHz, 20 kV, 500 mTorr, 300 W, air or SF6) | [ | |
| Oat | fungi—artificial inoculation with | low pressure cold plasma prototype unit (1 kHz, 20 kV, 500 mTorr, 300 W, air or SF6) | [ |