Activity and deactivation of Fe-MFI catalysts for benzene hydroxylation to phenol by N2O

被引:85
|
作者
Meloni, D
Monaci, R
Solinas, V
Berlier, G
Bordiga, S
Rossetti, I
Oliva, C
Forni, L
机构
[1] Univ Milan, Dipartimento Chim Fis & Elettrochim, I-20133 Milan, Italy
[2] Univ Turin, Dipartimento Chim Inorgan Fis & Mat, I-10125 Turin, Italy
[3] Univ Cagliari, Dipartimento Sci Chim, I-09042 Cagliari, Italy
关键词
Fe-MFI catalyst; benzene hydroxylation by N2O; catalyst acidity; catalyst coking;
D O I
10.1016/S0021-9517(03)00013-7
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
Isomorphously substituted Fe-MFI zeolite catalysts with various Si/Al and/or Si/Fe ratios were synthesized and characterized by many different techniques, such as ICP, XRD, SEM, TPR, microcalorimetry, FTIR, and EPR. Under standard reaction conditions the best catalyst gave 20% benzene conversion and over 90% selectivity to phenol. For Fe-ZSM5 catalysts, addition of steam to the feed improved catalyst activity, selectivity, and durability. Phenol formed onto Fe-based sites only. Active sites could very likely be composed of oxygen-bridged, extraframework binuclear Fe redox species, charge-compensating the framework Fe3+ or Al3+ ions. Surface acidity was not responsible for activity in the main reaction, but it was heavily involved in catalyst deactivation by coking. Catalyst deactivation derived mainly from the decomposition-condensation of phenol onto acid sites; the stronger the latter, the quicker was the coking rate. (C) 2003 Elsevier Science (USA). All rights reserved.
引用
收藏
页码:169 / 178
页数:10
相关论文
共 50 条
  • [31] Oxidation of benzene to phenol with N2O over a hierarchical Fe/ZSM-5 catalyst
    Ouyang, Cui
    Li, Jianwei
    Qu, Yaqi
    Hong, Song
    He, Songbo
    GREEN ENERGY & ENVIRONMENT, 2023, 8 (04) : 1161 - 1173
  • [32] Mechanism and kinetics of direct N2O decomposition over Fe-MFI zeolites with different iron speciation from temporal analysis of products
    Kondratenko, Evgenii V.
    Perez-Ramirez, Javier
    JOURNAL OF PHYSICAL CHEMISTRY B, 2006, 110 (45): : 22586 - 22595
  • [33] Mechanism and micro-kinetics of direct N2O decomposition over BaFeAl11O19 hexaaluminate and comparison with Fe-MFI zeolites
    Kondratenko, Evgenii V.
    Kondratenko, Vita A.
    Santiago, Marta
    Perez-Ramirez, Javier
    APPLIED CATALYSIS B-ENVIRONMENTAL, 2010, 99 (1-2) : 66 - 73
  • [34] Deactivation and regeneration of FeZSM-5 molecular sieves for one-step oxidation of benzene to phenol by N2O
    Wang, Xiaoting
    Li, Jianwei
    Guo, Quanhui
    Chen, Biaohua
    Huaxue Fanying Gongcheng Yu Gongyi/Chemical Reaction Engineering and Technology, 2008, 24 (04): : 348 - 352
  • [35] Improved performance of hierarchical Fe-ZSM-5 in the direct oxidation of benzene to phenol by N2O
    Li, Lulu
    Meng, Qinglun
    Wen, Junjun
    Wang, Jingui
    Tu, Gaomei
    Xu, Chunhui
    Zhang, Fumin
    Zhong, Yijun
    Zhu, Weidong
    Xiao, Qiang
    MICROPOROUS AND MESOPOROUS MATERIALS, 2016, 227 : 252 - 257
  • [36] Hydroxylation of benzene to phenol on Fe/TiO2 catalysts loaded with different types of second metal
    Tanarungsun, Garun
    Kiatkittipong, Worapon
    Praserthdam, Piyasan
    Yamada, Hiroshi
    Tagawa, Tomohiko
    Assabumrungrat, Suttichai
    CATALYSIS COMMUNICATIONS, 2008, 9 (09) : 1886 - 1890
  • [37] Mechanisms for the Ni+-mediated oxidation of benzene to phenol by N2O
    Zhao, Lianming
    Liu, Zhaochun
    Guo, Wenyue
    Lu, Xiaoqing
    Lin, Xianqing
    Shan, Honghong
    CHEMICAL PHYSICS LETTERS, 2008, 463 (1-3) : 54 - 59
  • [38] Catalytic oxidation of benzene to phenol by FeZSM-5/N2O
    Ji, D
    Ren, T
    Zhang, XM
    Suo, JS
    Ding, Y
    PROGRESS IN CHEMISTRY, 2003, 15 (01) : 51 - 59
  • [39] ONE-STEP HYDROXYLATION OF BENZENE TO PHENOL .2. GAS-PHASE N2O OXIDATION OVER MO/FE/BOROSILICATE MOLECULAR-SIEVE
    YOO, JS
    SOHAIL, AR
    GRIMMER, SS
    CHOIFENG, C
    CATALYSIS LETTERS, 1994, 29 (3-4) : 299 - 310
  • [40] Dispersing VO2 on Fe2O3 for direct hydroxylation of benzene to phenol
    Deng, Yangzhou
    Zhang, Yuqi
    Wei, Kunkun
    Liu, Juanjuan
    MOLECULAR CATALYSIS, 2025, 573