Aromatization of ethylene over zeolite-based catalysts

被引:84
|
作者
Uslamin, Evgeny A. [1 ]
Saito, Hikaru [2 ]
Kosinov, Nikolay [1 ]
Pidko, Evgeny [1 ,3 ]
Sekine, Yasushi [2 ]
Hensen, Emiel J. M. [1 ]
机构
[1] Eindhoven Univ Technol, Dept Chem Engn & Chem, Lab Inorgan Chem & Catalysis, POB 513, NL-5600 MB Eindhoven, Netherlands
[2] Waseda Univ, Dept Appl Chem, Shinjuku Ku, 3-4-1 Okubo, Tokyo 1698555, Japan
[3] Delft Univ Technol, Dept Chem Engn, Inorgan Syst Engn Grp, Maasweg 9, NL-2629 HZ Delft, Netherlands
关键词
ZSM-5-TYPE ZEOLITE; COKE FORMATION; LIGHT ALKANES; HYDROCARBONS; METHANOL; CONVERSION; HZSM-5; DEHYDROAROMATIZATION; H-ZSM-5; ETHANOL;
D O I
10.1039/c9cy02108f
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Light aromatic compounds (BTX: benzene, toluene and xylenes) represent an important class of building blocks in the chemical industry. Currently, light aromatics are obtained exclusively from fossil feedstock, whose utilization is associated with serious environmental concerns. Developing new routes for a more sustainable BTX production is, therefore, of high importance. In this work, aromatization of ethylene over well-defined metal-modified HZSM-5 zeolite catalysts is examined. The results show that modification of zeolite with gallium, zinc and silver leads to a significant increase in aromatics production. Metal species are responsible for catalysing dehydrogenation pathways with Ga being the most efficient for BTX production. Increasing temperature and ethylene partial pressure facilitate ethylene aromatization. Employing a combination of isotope labelling with a thorough characterization of zeolite-entrapped species by means of IR and MAS NMR spectroscopy provides evidence for the involvement of intra-zeolite aromatic hydrocarbon species in the catalytic cycle.
引用
收藏
页码:2774 / 2785
页数:12
相关论文
共 50 条
  • [31] NMR techniques for studying the coking of zeolite-based catalysts
    Bonardet, JL
    Barrage, MC
    Fraissard, J
    DEACTIVATION AND TESTING OF HYDROCARBON-PROCESSING CATALYSTS, 1996, 634 : 99 - 116
  • [32] ETHYLENE FROM ETHANOL OVER ZEOLITE CATALYSTS
    MAO, RL
    LEVESQUE, P
    MCLAUGHLIN, G
    DAO, LH
    APPLIED CATALYSIS, 1987, 34 (1-2): : 163 - 179
  • [33] Preparation of highly active zeolite-based hydrodesulfurization catalysts: Zeolite-supported Rh catalysts
    Sugioka, M
    Tochiyama, C
    Sado, F
    Maesaki, N
    CATALYSTS IN PETROLEUM REFINING AND PETROCHEMICAL INDUSTRIES 1995, 1996, 100 : 551 - 558
  • [34] HYDROGENATION OF CARBON-MONOXIDE TO FORM LIGHT OLEFINS OVER ZEOLITE-BASED IRON CATALYSTS
    SANO, T
    YANAGISAWA, H
    SAITO, K
    OKABE, K
    OKADO, H
    TAKAYA, H
    BANDO, K
    APPLIED CATALYSIS, 1985, 19 (02): : 247 - 258
  • [35] Synthesis of cyclic carbonates from olefins and CO2 over zeolite-based catalysts
    Srivastava, R
    Srinivas, D
    Ratnasamy, P
    CATALYSIS LETTERS, 2003, 89 (1-2) : 81 - 85
  • [36] AROMATIZATION OF ETHYLENE ON HIGH-SILICON ZEOLITE CATALYSTS MODIFIED BY ZINC AND GALLIUM
    VOROBEV, BL
    MALOV, YI
    KHVOROVA, EP
    KOSHELEV, YN
    KHARCHENKO, AA
    BLANDINA, LA
    JOURNAL OF APPLIED CHEMISTRY OF THE USSR, 1991, 64 (10): : 1987 - 1991
  • [37] Kinetic reaction models for the selective reduction of NO by methane over multifunctional zeolite-based redox catalysts
    Sowade, T
    Schütze, EW
    Berndt, H
    Grünert, W
    CHEMICAL ENGINEERING & TECHNOLOGY, 2004, 27 (12) : 1277 - 1289
  • [38] Synthesis of Cyclic Carbonates from Olefins and CO2 over Zeolite-Based Catalysts
    Rajendra Srivastava
    D. Srinivas
    Paul Ratnasamy
    Catalysis Letters, 2003, 89 : 81 - 85
  • [39] Revealing the effect of framework acidity on the catalytic combustion of vinyl chloride over zeolite-based catalysts
    Li, Mingqi
    Cai, Yuang
    Zhan, Wangcheng
    Wang, Li
    Dai, Qiguang
    Guo, Yun
    Wang, Aiyong
    Guo, Yanglong
    SEPARATION AND PURIFICATION TECHNOLOGY, 2024, 340
  • [40] Promoting Direct CO2 Conversion to DME over Zeolite-based Hybrid Catalysts
    Frusteri, L.
    Bonura, G.
    Cannilla, C.
    Todaro, S.
    Giordano, G.
    Migliori, M.
    Frusteri, F.
    PETROLEUM CHEMISTRY, 2020, 60 (04) : 508 - 515