[1] L. Yang, X. Zhang, Q. Kan, B.R. Zhao, X.X. Ma, Effect of gas composition on nitric oxide removal from simulated flue gas with DBD-NPC method, Chin. J. Chem. Eng. 27 (12) (2019) 3017-3026. [2] G. Fridman, G. Friedman, A. Gutsol, A.B. Shekhter, V.N. Vasilets, A. Fridman, Applied plasma medicine, Plasma Process. Polym. 5 (6) (2008) 503-533. [3] Q. Chen, J.T. Sun, X.J. Zhang, Kinetic contribution of CO2/O2 additive in methane conversion activated by non-equilibrium plasmas, Chin. J. Chem. Eng. 26 (5) (2018) 1041-1050. [4] E. Thimsen, M. Johnson, X. Zhang, A.J. Wagner, K.A. Mkhoyan, U.R. Kortshagen, E.S. Aydil, High electron mobility in thin films formed via supersonic impact deposition of nanocrystals synthesized in nonthermal plasmas, Nat. Commun. 5 (2014) 5822. [5] U. Kogelschatz, Dielectric-barrier discharges: Their history, discharge physics, and industrial applications, Plasma Chem. Plasma Process. 23 (1) (2003) 1-46. [6] R. Brandenburg, Dielectric barrier discharges: Progress on plasma sources and on the understanding of regimes and single filaments, Plasma Sources Sci. Technol. 26 (5) (2017) 053001. [7] Y.F. Zhang, L.S. Wei, X. Liang, M. Šimek, Ozone production in coaxial DBD using an amplitude-modulated AC power supply in air, Ozone Sci. Eng. 41 (5) (2019) 437-447. [8] T. Homola, B. Pongrác, M. Zemánek, M. Šimek, Efficiency of ozone production in coplanar dielectric barrier discharge, Plasma Chem Plasma Process 39 (5) (2019) 1227-1242. [9] T. Homola, V. Prukner, P. Hoffer, M. Šimek, Multi-hollow surface dielectric barrier discharge: An ozone generator with flexible performance and supreme efficiency, Plasma Sources Sci. Technol. 29 (9) (2020) 095014. [10] S.W. Xu, F. He, Y. Wang, L.L. Li, J.T. Ouyang, Effect of volume and surface charges on discharge structure of glow dielectric barrier discharge, Phys. Plasmas 20 (8) (2013) 083515. [11] G. Niu, A. Knodel, S. Burhenn, S. Brandt, J. Franzke, Review: Miniature dielectric barrier discharge (DBD) in analytical atomic spectrometry, Anal. Chimica Acta 1147 (2021) 211-239. [12] C.H. Ma, B. Dai, P. Liu, N. Zhou, A.J. Shi, L.L. Ban, H.W. Chen, Deep oxidative desulfurization of model fuel using ozone generated by dielectric barrier discharge plasma combined with ionic liquid extraction, J. Ind. Eng. Chem. 20 (5) (2014) 2769-2774. [13] P. Seyfi, M.R. Golghand, S. Ghasemi, H. Ghomi, The effect of mixed electric field on characteristic of ozone generation in a DBD plasma source, J Theor Appl Phys 14 (3) (2020) 195-202. [14] A. Hafeez, N. Shezad, F. Javed, T. Fazal, M.S. Rehman, F. Rehman, Developing multiplexed plasma micro-reactor for ozone intensification and wastewater treatment, Chem. Eng. Process. Process. Intensif. 162 (2021) 108337. [15] M.A. Malik, Ozone synthesis using shielded sliding discharge: Effect of oxygen content and positive versus negative streamer mode, Ind. Eng. Chem. Res. 53 (31) (2014) 12305-12311. [16] H. Liang Chen, H. Ming Lee, M. Been Chang, Enhancement of energy yield for ozone production via packed-bed reactors, Ozone Sci. Eng. 28 (2) (2006) 111-118. [17] L.S. Wei, H.Z. Deng, G. Neretti, Y.F. Zhang, Ozone yield limit in low temperature plasmas based on thermodynamics, Eur. Phys. J. D 73 (7) (2019) 136. [18] W.J.M. Samaranayake, Y. Miyahara, T. Namihira, S. Katsuki, R. Hackam, H. Akiyama, Ozone production using pulsed dielectric barrier discharge in oxygen, IEEE Trans. Dielectr. Electr. Insul. 7 (6) (2000) 849-854. [19] J.S. Chang, P.A. Lawless, T. Yamamoto, Corona discharge processes, IEEE Trans. Plasma Sci. 19 (6) (1991) 1152-1166. [20] S.L. Park, J.D. Moon, S.H. Lee, S.Y. Shin, Effective ozone generation utilizing a meshed-plate electrode in a dielectric-barrier discharge type ozone generator, J. Electrost. 64 (5) (2006) 275-282. [21] M. Li, Experimental study on ozone generation from oxygen in double surface dielectric barrier discharge, Vacuum 157 (2018) 249-258. [22] E. Gnapowski, S. Gnapowski, J. Pytka, The impact of dielectrics on the electrical capacity, concentration, efficiency ozone generation for the plasma reactor with mesh electrodes, Plasma Sci. Technol. 20 (2018) (8)93-99. [23] S. Jodzis, T. Barczyński, Ozone synthesis and decomposition in oxygen-fed pulsed DBD system: Effect of ozone concentration, power density, and residence time, Ozone Sci. Eng. 41 (1) (2019) 69-79. [24] K. Takaki, Influence of electrode configuration on ozone synthesis and microdischarge property in dielectric barrier discharge reactor, Vacuum 83 (1) (2008) 128-132. [25] Q.Z. Ye, Y.F. Wu, X.W. Li, T. Chen, G.W. Shao, Uniformity of dielectric barrier discharges using mesh electrodes, Plasma Sources Sci. Technol. 21 (6) (2012) 065008. [26] Y. Hui, N. Lu, P.Z. Luo, K.F. Shang, N. Jiang, J. Li, Y. Wu, Classification and uniformity optimization of mesh-plate DBD and its application in polypropylene modification, Plasma Sci. Technol. 21 (2019) (5)53-61. [27] D.K. Yuan, Characteristics of temperature distribution in atmospheric pulsed surface dielectric barrier discharge for ozone production, Vacuum 176 (2020) 109351. [28] F. Liu, H.J. Chu, Y. Zhuang, Z. Fang, Influence of dielectric materials on discharge characteristics of coaxial DBD driven by nanosecond pulse voltage, Plasma Res. Express 2 (3) (2020) 034001. [29] Y. Yu, S.L. Liu, J. Ji, H.B. Huang, Amorphous MnO2 surviving calcination: An efficient catalyst for ozone decomposition, Catal. Sci. Technol. 9 (18) (2019) 5090-5099. [30] S. Ch, Catalytic abatement of volatile organic compounds assisted by non-thermal plasma, Appl. Catal. B Environ. 65 (1-2) (2006) 150-156. [31] M. Kraus, B. Eliasson, U. Kogelschatz, A. Wokaun, CO2 reforming of methane by the combination of dielectric-barrier discharges and catalysis, Phys. Chem. Chem. Phys. 3 (3) (2001) 294-300. [32] H. Jiang, T. Shao, C. Zhang, W.F. Li, P. Yan, X.K. Che, E. Schamiloglu, Experimental study of Q-V Lissajous figures in nanosecond-pulse surface discharges, IEEE Trans. Dielectr. Electr. Insul. 20 (4) (2013) 1101-1111. [33] A. Meiners, M. Leck, B. Abel, Efficiency enhancement of a dielectric barrier plasma discharge by dielectric barrier optimization, Rev. Sci. Instrum. 81 (11) (2010) 113507. [34] C.L. Song, Simultaneous removals of NOx, HC and PM from diesel exhaust emissions by dielectric barrier discharges, J. Hazard. Mater. 166 (1) (2009) 523-530. [35] K. Nassour, M. Brahami, A. Tilmatine, S. Nemmich, F. Miloua, N. Ramdani, N. Zouzou, Comparative experimental analysis of ozone generation between surface and volume DBD generators, IEEE Trans. Dielectr. Electr. Insul. 25 (2) (2018) 428-434. [36] W.J. Liang, Abatement of toluene from gas streams via Ferro-electric packed bed dielectric barrier discharge plasma, J. Hazard. Mater. 170 (2-3) (2009) 633-638. [37] Xu ying-chun, Li yan-bin, Liu ya-zhao, Luo Y., Chu guang-wen, Zhang liang-liang, Chen. jian-feng, Liquid jet impaction on the single-layer stainless steel wire mesh in a rotating packed bed reactor, Aiche J. 65 (6) (2019): e16597. [38] X.X. Wang, H.Y. Luo, Z. Liang, T. Mao, R.L. Ma, Influence of wire mesh electrodes on dielectric barrier discharge, Plasma Sources Sci. Technol. 15 (4) (2006) 845-848. [39] H.L. Chen, H.M. Lee, S.H. Chen, T.C. Wei, M.B. Chang, Influence of Ar addition on ozone generation in nonthermal plasmas, Plasma Sources Sci. Technol. 19 (6) (2010) 065009. [40] H.L. Chen, H.M. Lee, S.H. Chen, T.C. Wei, M.B. Chang, Influence of Ar addition on ozone generation in a non-thermal plasma—a numerical investigation, Plasma Sources Sci. Technol. 19 (5) (2010) 055009. [41] A. Khoja, M. Tahir, N.A.S. Amin, Dry reforming of methane using different dielectric materials and DBD plasma reactor configurations, Energy Convers. Manag. 144 (2017) 262-274. [42] K. Teranishi, N. Shimomura, S. Suzuki, H. Itoh, Development of dielectric barrier discharge-type ozone generator constructed with piezoelectric transformers: Effect of dielectric electrode materials on ozone generation, Plasma Sources Sci. Technol. 18 (4) (2009) 045011. [43] N. Jiang, Effects of electrode geometry on the performance of dielectric barrier/packed-bed discharge plasmas in benzene degradation, J. Hazard. Mater. 262 (2013) 387-393. [44] T. Wang, B.M. Sun, H.P. Xiao, J.Y. Zeng, E.P. Duan, J. Xin, C. Li, Effect of reactor structure in DBD for nonthermal plasma processing of NO in N2 at ambient temperature, Plasma Chem Plasma Process 32 (6) (2012) 1189-1201. [45] S.M. Barinov, A.M. Efremov, Kinetics of growth and plasma destruction of polymer films deposited in a glow discharge in methane, Russ. Microelectron. 45 (2) (2016) 91-97. [46] W.J. Lu, Y. Abbas, M.F. Mustafa, C. Pan, H.T. Wang, A review on application of dielectric barrier discharge plasma technology on the abatement of volatile organic compounds, Front. Environ. Sci. Eng. 13 (2) (2019) 30. [47] Y.F. Zhang, L.S. Wei, X. Liang, H.Z. Deng, M. Šimek, Characteristics of the discharge and ozone generation in oxygen-fed coaxial DBD using an amplitude-modulated AC power supply, Plasma Chem Plasma Process 38 (6) (2018) 1199-1208. [48] T.L. Sung, Effect of pulse power characteristics and gas flow rate on ozone production in a cylindrical dielectric barrier discharge ozonizer, Vacuum 90 (2013) 65-69. [49] P. Zylka, Evaluation of ozone generation in volume spiral-tubular dielectric barrier discharge source, Energies 13 (5) (2020) 1199. [50] M.T. Layati, K. Nassour, S. Nemmich, M. Brahami, A. Tilmatine, Experimental analysis of a cylindrical ozone generator with a partitioned high-voltage electrode, Ozone Sci. Eng. 43 (4) (2021) 339-350. [51] X.L. Tang, F.Y. Gao, J.G. Wang, H.H. Yi, S.Z. Zhao, B.W. Zhang, Y.R. Zuo, Z.X. Wang, Comparative study between single- and double-dielectric barrier discharge reactor for nitric oxide removal, Ind. Eng. Chem. Res. 53 (14) (2014) 6197-6203. |