Plasma Treated Liquid: Reactive Species and Influence on Saline Stress in Quinoa Seeds

Main Article Content

I.C. Gerber
S. Simon
B. Tatarcan
G. Mihalache
I. Mihaila
I. Topala

Abstract

Atmospheric pressure plasma sources are increasingly used in life science, from biomedical fields to agricultural and food applications. The use of liquids as targets in plasma treatments leads to the absorption at the plasma−liquid interface of reactive species produced by the discharge. This study focuses on the optical diagnosis of a liquid-compatible plasma source (50 Hz, 15.5 kV) and correlating the physico−chemical changes in the treated liquids with the plasma operating parameters and the ability of liquids to store the reactive species long-term. Furthermore, the effects of the treated liquids on seed germination and response to saline stress were investigated.


 

Article Details

How to Cite
[1]
I. Gerber, S. Simon, B. Tatarcan, G. Mihalache, I. Mihaila, and I. Topala, “Plasma Treated Liquid: Reactive Species and Influence on Saline Stress in Quinoa Seeds”, Acta Phys. Pol. A, vol. 146, no. 4, p. 563, Nov. 2024, doi: 10.12693/APhysPolA.146.563.
Section
Special segment

References

A. Nakajima, G. Uchida, T. Kawasaki, K. Koga, T. Sarinont, T. Amano, K. Takenaka, M. Shiratani, Y. Setsuhara, J. Appl. Phys. 118, 043301 (2015)

S. Horikoshi, N. Serpone, RSC Adv. 7, 47196 (2017)

V. Gamaleev, N. Iwata, M. Hori, M. Hiramatsu, M. Ito, Appl. Sci. 9, 3505 (2019)

C. Man, C. Zhang, H. Fang, R. Zhou, B. Huang, Y. Xu, X. Zhang, T. Shao, Plasma Process. Polym. 19, 2200004 (2022)

R.J. Wandell, S. Bresch, H. Wang, V. Babicky, P. Lukes, B.R. Locke, Int. J. Plasma Environ. Sci. Technol. 14, e01008 (2020)

C. Bradu, K. Kutasi, M. Magureanu, N. Puač, S. Živković, J. Phys. D Appl.Phys. 53, 223001 (2020)

A.B. Stache, I. Mihăilă, I.C. Gerber, L.M. Dragoş, C.T. Mihai, I.C. Ivanov, I. Topală, D.-L. Gorgan, Appl. Sci. 13, 7803 (2023)

U. Schnabel, R. Niquet, U. Krohmann, J. Winter, O. Schlüter, K.-D. Weltmann, J. Ehlbeck, Plasma Process. Polym. 9, 569 (2012)

F. Utsumi, H. Kajiyama, K. Nakamura, H. Tanaka, M. Mizuno, K. Ishikawa, H. Kondo, H. Kano, M. Hori, F. Kikkawa, PLoS One 8, e81576 (2013)

P.N. Bala Subramanian, J. Ananthanarasimhan, P. Leelesh, H. Rao, A.M. Shivapuji, P. Girard-Lauriault, L. Rao, J. Appl. Phys. 129, 093303 (2021)

S. Padureanu, R. Burlica, V. Stoleru, O. Beniuga, D. Dirlau, D.E. Cretu, D. Astanei, A. Patras, Agronomy 13, 459 (2023)

L.-I. Leti, I.C. Gerber, I. Mihaila, P.-M. Galan, S. Strajeru, D.-E. Petrescu, M.-M. Cimpeanu, I. Topala, D.-L. Gorgan, Plants 11, 2181 (2022)

M. Zver, D. Dobnik, R. Zaplotnik, M. Mozetič, A. Filipić, G. Primc, J. Water Process Eng. 53, 103839 (2023)

I. Florescu, I. Radu, A. Teodoru, L. Gurau, C. Chireceanu, F. Bilea, M. Magureanu, Plants 12, 794 (2023)

I. Burducea, C. Burducea, P.-E. Mereuta et al., Foods 12, 208 (2023)

P. Attri, K. Ishikawa, T. Okumura, K. Koga, M. Shiratani, Processes 8, 1002 (2020)

H.-H. Kim, A.A. Abdelaziz, Y. Teramoto et al., Int. J. Plasma Environ. Sci. Technol. (IJPEST) 17, e02004 (2023)

M. Janda, K. Hensel, P. Tóth, M.E. Hassan, Z. Machala, Appl. Sci. 11, 7053 (2021)

S. Ognier, D. Iya-sou, C. Fourmond, S. Cavadias, Plasma Chem. Plasma Process. 29, 261 (2009)

J.E. Foster, Phys. Plasmas 24, 055501 (2017)