Microwave Discharge in Liquids: Physics and Applications
Abstract
This paper presents a generalization of experimental data on microwave discharges in liquids, one of the least studied types of the discharge. The physical characteristics of discharges in liquids are described, and the main differences between microwave discharges in liquids and discharges in gases are shown. It is demonstrated that with increasing incident power, the formation rate increases while the product composition remains unchanged, which is a characteristic feature of discharges in liquids. Examples of applications of microwave discharges for hydrogen production and CO2 decomposition are given.
Keywords
About the Authors
T. S. BatukaevRussian Federation
Moscow
I. V. Bilera
Russian Federation
Moscow
G. V. Krashevskaya
Russian Federation
Moscow
Y. A. Lebedev
Russian Federation
Moscow
References
1. P. Bruggeman, C. Leys. J. Phys. D: Appl. Phys., 42 (2009) 053001, doi: 10.1088/0022-3727/42/5/053001
2. S. Samukawa, M. Hori, S. Rauf, K. Tachibana, P. Bruggeman, G. Kroesen, J. C. Whitehead, A. B. Murphy, A. F. Gutsol, S. Starikovskaia. J. Phys. D: Appl. Phys., 45 (2012) 253001, doi: 10.1088/0022-3727/45/25/253001
3. P. J. Bruggeman, M. J. Kushner, B. R. Locke, J. G. E. Gardeniers, W. G. Graham, D. B. Graves, R. C. H. M. Hofman-Caris, D. Maric, J. P. Reid, E. Ceriani, D. Fernandez Rivas, J. E. Foster, S. C. Garrick, Y. Gorbanev, S. Hamaguchi, F. Iza, H. Jablonowski, E. Klimova, J. Kolb, F. Krcma, P. Lukes, Z. Machala, I. Marinov, D. Mariotti, S. Mededovic Thagard, D. Minakata, E. C. Neyts, J. Pawlat, Z. Lj. Petrovic, R. Pflieger, S. Reuter, D. C. Schram, S. Schröter, M. Shiraiwa, B. Tarabová, P. A. Tsai, J. R. R. Verlet, T. von Woedtke, K. R. Wilson, K. Yasui, G. Zvereva. Plasma Sources Sci. and Technol., 25 (2016) 053002, doi: 10.1088/0963-0252/25/5/053002
4. I. Adamovich, S. D. Baalrud, A. Bogaerts, P. J. Bruggeman, M. Cappelli, V. Colombo, U. Czarnetzki, U. Ebert, J. G. Eden, P. Favia, D. B. Graves, S. Hamaguchi, G. Hieftje, M. Hori, I. D. Kaganovich, U. Kortshagen, M. J. Kushner, N. J. Mason, S. Mazouffre, S. Mededovic Thagard, H.-R. Metelmann, A. Mizuno, E. Moreau, A. B. Murphy, B. A. Niemira, G. S. Oehrlein, Z. Lj. Petrovic, L. C. Pitchford, Y.-K. Pu, S. Rauf, O. Sakai, S. Samukawa, S. Starikovskaia, J. Tennyson, K. Terashima, M. M. Turner, M. C. M. van de Sanden, A. Vardelle. J. Phys. D: Appl. Phys., 50 (2017) 323001, doi: 10.1088/1361-6463/aa76f5
5. I. Adamovich, S. Agarwal, E. Ahedo, L. L. Alves, S. Baalrud, N. Babaeva, A. Bogaerts, A. Bourdon, P. J. Bruggeman, C. Canal, E. H. Choi, S. Coulombe, Z. Donkó, D. B. Graves, S. Hamaguchi, D. Hegemann, M. Hori, H.-H. Kim, G. M. W. Kroesen, M. J. Kushner, A. Laricchiuta, X. Li, T. E. Magin, S. Mededovic Thagard, V. Miller, A. B. Murphy, G. S. Oehrlein, N. Puac, R. M. Sankaran, S. Samukawa, M. Shiratani, M. Šimek, N. Tarasenko, K. Terashima, E. Thomas Jr., J. Trieschmann, S. Tsikata, M. M. Turner, I. J. van der Walt, M. C. M. van de Sanden, T. von Woedtke. J. Phys. D: Appl. Phys., 55 (2022) 373001, doi: 10.1088/1361-6463/ac5e1c
6. Yu. A. Lebedev. Plasma Phys. Rep., 43 (2017) 685—695, doi: 10.1134/S1063780X17060101
7. Yu. A. Lebedev. High Temperature, 56 (2018) 811—820, doi: 10.1134/S0018151X18050280
8. Yu. A. Lebedev. Polymers, 13 (2021) 1678—1706, doi: 10.3390/polym13111678
9. Yu. A. Lebedev, G. V. Krashevskaya, T. S. Batukaev, I. L. Epstein. Plasma Proc. Polym., 18 (2021) 2100051, doi: 10.1002/ppap.202100051
10. Yu. A. Lebedev, G. V. Krashevskaya, T. S. Batukaev, A. V. Mikhaylyuk. Plasma Proc. Polym., 19 (2022) 2100215, doi: 10.1002/ppap.202100215
11. Т. S. Batukaev, I. V. Bilera, G. V. Krashevskaya, Yu. A. Lebedev, I. L. Epstein. Plasma Proc. Polym., 20 (2023) e2300015, doi: 10.1002/ppap.202300015
12. Yu. A. Lebedev, T. S. Batukaev, I. V. Bilera, A. V. Tatarinov, A. Yu. Titov, I. L. Epstein. Plasma Physics Reports, 50 (2024) 999—1010, doi: 10.1134/S1063780X24601238
13. T. S. Batukaev, I. V. Bilera, G. V. Krashevskaya, Yu. A. Lebedev. Processes 11 (2023) 2292—2314, doi: 10.3390/pr11082292
14. S. Nomura, H. Toyota, S. Mukasa, H. Yamashita, T. Maehara, A. Kawashima. J. Appl. Phys., 106 (2009) 073306, doi: 10.1063/1.3236575
15. S. Nomura, H. Toyota, M. Tawara, H. Yamashita, K. Matsumoto. Appl. Phys. Lett., 88 (2006) 231502, doi: 10.1063/1.2210448
16. K. A. Averin, I. V. Bilera, Yu. A. Lebedev, V. A. Shakhatov, I. L. Epstein. Plasma Proc. Polym., 16 (2019) 1800198, doi: 10.1002/ppap.201800198
17. Yu. A. Lebedev, K. A. Averin, A. V. Tatarinov. High Energy Chem., 54 (2019) 331—335, doi: 10.1134/S0018143919030032
18. T. S. Batukaev, I. V. Bilera, G. V. Krashevskaya, Yu. A. Lebedev, N. A. Nazarov. Plasma, 6 (2023) 115—126, doi: 10.3390/plasma6010010
19. Z. Yu, B. Sun, G. Ding, J. Liu, X. Zhu, Y. Xin. J. Anal. Appl. Pyrolysis, 190 (2025) 107119, doi: 10.1016/j.jaap.2025.107119
20. Т. С. Батукаев, И. В. Билера, Г. В. Крашевская, Ю. А. Лебедев, В. К. Шумилов. Письма в ЖТФ, 51 (2025), 50—53, doi: 10.61011/PJTF.2025.21.61529.20428
21. T. Zhu, B. Sun, X. Zhu, L. Wang, Y. Xin, J. Liu. J. Anal. Appl. Pyrolysis, 156 (2021) 105111, doi: 10.1016/j.jaap.2021.105111
22. B. Sun, X. Zhao, Y. Xin, X. Zhu. Int. J. Hydr. Energy, 42 (2017) 24047—24054, doi: 10.1016/j.ijhydene.2017.08.052
23. X. Zhao, B. Sun, X. Zhu, Z. Yan, H. Liu, Y. Liu. Comtrib. Plasma Phys., 56 (2016) 968—974, doi: 10.1002/ctpp.201600011
24. B. Wang, B. Sun, X. Zhu, Z. Yan, Y. Liu, H. Liu, Q. Liu. Int. J. Hydr. Energy, 41 (2016) 7280—7291, doi: 10.1016/j.ijhydene.2016.03.110
25. B. Sun, X. Zhao, Y. Xin, X. Zhu. Int. J. Hydr. Energy, 42 (2017) 24047—24054, doi: 10.1016/j.ijhydene.2017.08.052
26. R. Shiraishi, S. Nomura, S. Mukasa, R. Nakano, R. Kamatoko. Int. J. Hydr. Energy, 43 (2018) 4305—4310, doi: 10.1016/j.ijhydene.2018.01.060
27. X. Zhao, B. Sun, T. Zhu, X. Zhu, Z. Yan, Y. Xin, X. Sun. Renewable Energy, 156 (2020) 768—776, doi: 10.1016/j.renene.2020.04.088
28. T. Zhu, B. Sun, X. Zhu, L. Wang, Y. Xin, J. Liu. J. Anal. Appl. Pyrolysis, 156 (2021) 105111, doi: 10.1016/j.jaap.2021.105111
29. J.-L. Liu, T. H. Zhu, B. Sun. Int. J. Hydr. Energy, 47 (2022) 12841—12854, doi: 10.1016/j.ijhydene.2022.02.041
30. Y. Xin, Q. Wang, J. Sun, B. Sun. Appl. Energy, 325 (2022) 119892, doi: 10.1016/j.apenergy.2022.119892
31. Yu. A. Lebedev, K. A. Averin. J. Phys. D: Appl. Phys., 51 (2018) 214005, doi: 10.1088/1361-6463/aabea2
Review
For citations:
Batukaev T.S., Bilera I.V., Krashevskaya G.V., Lebedev Y.A. Microwave Discharge in Liquids: Physics and Applications. Zhurnal Prikladnoii Spektroskopii. 2026;93(3):334-339. (In Russ.)
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