Influence of ferroelectric materials and catalysts on the performance of non-thermal plasma (NTP) for the removal of air pollutants

被引:147
作者
Holzer, F [1 ]
Kopinke, FD [1 ]
Roland, U [1 ]
机构
[1] UFZ Helmholtz Ctr Environm Res, Dept Environm Technol, D-40318 Leipzig, Germany
关键词
non-thermal plasma; atmospheric pressure; VOCs; ferroelectric pellets; plasma catalysis; CO2; selectivity;
D O I
10.1007/s11090-005-6804-1
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The introduction of ferroelectric and catalytically active materials into the discharge zone of NTP reactors is a promising way to improve their performance for the removal of hazardous substances, especially those appearing in low concentrations. In this study, several coaxial barrier-discharge plasma reactors varying in size and barrier material (glass, Al-2 O-3, and TiO2) were used. The oxidation of methyl tert-butyl ether (MTBE), toluene and acetone was studied in a gas-phase plasma and in various packed-bed reactors (filled with ferroelectric and catalytically active materials). In the ferroelectric packed-bed reactors, better energy efficiency and CO2 selectivity were found for the oxidation of the model substances. Studies on the oxidation of a toluene/acetone mixture in air showed an enhanced oxidation of the less reactive acetone related to toluene in the ferroelectric packed-bed reactors. It can be concluded that the change of the electrical discharge behaviour was caused by a larger number of non-selective and highly reactive plasma species formed within the ferroelectric bed. When combining ferroelectric (BaTiO3) and catalytically active materials (LaCoO3), only a layered implementation led to synergistic effects utilising both highly energetic species formed in the ferroelectric packed-bed and the potential for total oxidation provided by the catalytically active material in the second part of the packed bed.
引用
收藏
页码:595 / 611
页数:17
相关论文
共 39 条
  • [1] Oxidation of 2-heptanone in air by a DBD-type plasma generated within a honeycomb monolith supported Pt-based catalyst
    Ayrault, C
    Barrault, J
    Blin-Simiand, N
    Jorand, F
    Pasquiers, S
    Rousseau, A
    Tatibouët, JM
    [J]. CATALYSIS TODAY, 2004, 89 (1-2) : 75 - 81
  • [2] BUXTON G, 1988, J PHYS CHEM REV DATA, V17
  • [3] A study of volatile organic compounds decomposition with the use of non-thermal plasma
    Chae, JO
    Moon, SI
    Sun, HS
    Kim, KY
    Vassiliev, VA
    Mikholap, EM
    [J]. KSME INTERNATIONAL JOURNAL, 1999, 13 (09): : 647 - 655
  • [4] Abatement of perfluorocarbons with combined plasma catalysis in atmospheric-pressure environment
    Chang, MB
    Lee, HM
    [J]. CATALYSIS TODAY, 2004, 89 (1-2) : 109 - 115
  • [5] Cho W., 2002, CATAL TODAY, V74, P207
  • [6] Toluene and butyl acetate removal from air by plasma-catalytic system
    Demidiouk, V
    Moon, SI
    Chae, JO
    [J]. CATALYSIS COMMUNICATIONS, 2003, 4 (02) : 51 - 56
  • [7] ELIASSON B, 2000, Patent No. 1184078
  • [8] Factors and intermediates governing byproduct distribution for decomposition of butane in nonthermal plasma
    Futamura, S
    Zhang, AH
    Prieto, G
    Yamamoto, T
    [J]. IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS, 1998, 34 (05) : 967 - 974
  • [9] Synergistic effect of silent discharge plasma and catalysts on benzene decomposition
    Futamura, S
    Einaga, H
    Kabashima, H
    Hwan, LY
    [J]. CATALYSIS TODAY, 2004, 89 (1-2) : 89 - 95
  • [10] An energy-consumption and byproduct-generation analysis of the discharge nonthermal plasma-chemical NO-reduction process
    Gal, A
    Kurahashi, M
    Kuzumoto, M
    [J]. JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1999, 32 (10) : 1163 - 1168