Amphiphobic surface fabrication of iron catalyst and effect on product distribution of Fischer-Tropsch synthesis

被引:21
|
作者
Yan, Bin [1 ]
Ma, Long [1 ]
Gao, Xinhua [1 ]
Zhang, Jianli [1 ]
Ma, Qingxiang [1 ]
Zhao, Tian-Sheng [1 ]
机构
[1] Ningxia Univ, State Key Lab High Efficiency Utilizat Coal & Gre, Natl Chem Expt Teaching Demonstrat Ctr, Coll Chem & Chem Engn, Yinchuan 750021, Peoples R China
基金
中国国家自然科学基金;
关键词
Fischer-Tropsch synthesis; Amphiphobic modification; Low CO2 selectivity; Product distribution; CORE-SHELL MICROSPHERES; LIGHT OLEFINS; IN-SITU; CARBON; FE3O4; WATER; PERFORMANCE; SELECTIVITY; LIQUID; PHASE;
D O I
10.1016/j.apcata.2019.117184
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
The core-shell Fe3O4@SiO2-PFTS with amphiphobic property was prepared through successive hydrothermal process, stober method, and silylation reaction, where perfluorodecyltrlethoxysilane (PFTS) was employed as silylation agent to form amphiphobic surface. As-synthesized Fe3O4@SiO2-PFTS catalyst was exposed to the industrially relevant Fischer-Tropsch synthesis (FTS) conditions in a fixed-bed reactor and showed altered activity and product distribution different from traditional iron catalysts. Modified Fe3O4@SiO2-PFTS reduced evidently the production of CO2 from 44% of selectivity to 12% ascribed to suppression against the water gas shift (WGS) reaction, although CO conversion on Fe3O4@SiO2-PFTS as well as on Fe3O4@SiO2 declined compared with that on Fe3O4. Surface modification also caused the disappearance of mesopores and increase in steric hindrance, which inhibited diffusion of hydrocarbons. Secondary reactions of primary olefins were thus intensified, resulting in fall in olefin selectivity but rise in production of light hydrocarbons. The catalyst exhibited good stability within 120 h of time-on-stream.
引用
收藏
页数:9
相关论文
共 50 条
  • [21] Nanostructured Catalyst for Fischer-Tropsch Synthesis
    Gao, Wa
    Zhu, Qingshan
    Ma, Ding
    CHINESE JOURNAL OF CHEMISTRY, 2018, 36 (09) : 798 - 808
  • [22] Modeling Fischer-Tropsch kinetics and product distribution over a cobalt catalyst
    Pandey, Umesh
    Runningen, Anders
    Gavrilovic, Ljubisa
    Jorgensen, Erik A.
    Putta, Koteswara R.
    Rout, Kumar R.
    Rytter, Erling
    Blekkan, Edd A.
    Hillestad, Magne
    AICHE JOURNAL, 2021, 67 (07)
  • [23] Investigation on Supported Iron Catalyst for Fischer-Tropsch Synthesis
    葛裕华
    周钰明
    钱杰生
    丁莹如
    JournalofRareEarths, 1997, (01) : 12 - 16
  • [24] PRETREATMENT EFFECT STUDIES WITH A PRECIPITATED IRON FISCHER-TROPSCH CATALYST
    BUKUR, DB
    KORANNE, M
    LANG, XS
    ROA, KRPM
    HUFFMAN, GP
    APPLIED CATALYSIS A-GENERAL, 1995, 126 (01) : 85 - 113
  • [25] Effect of Iron Precursor on Catalytic Performance of Precipitated Iron Catalyst for Fischer-Tropsch Synthesis Reaction
    Di, Zuoxing
    Feng, Xuleng
    Yang, Zhi
    Luo, Mingsheng
    CATALYSIS LETTERS, 2020, 150 (09) : 2640 - 2647
  • [26] Investigation on supported iron catalyst for Fischer-Tropsch synthesis
    Ge, YH
    Zhou, YM
    Qian, JS
    Ding, YR
    JOURNAL OF RARE EARTHS, 1997, 15 (01) : 11 - 15
  • [27] Factors influencing the Fischer-Tropsch synthesis performance of iron-based catalyst: Iron oxide dispersion, distribution and reducibility
    Liu, Ren-Jie
    Xu, Yan
    Qiao, Yu
    Li, Zhen-Hua
    Ma, Xin-Bin
    FUEL PROCESSING TECHNOLOGY, 2015, 139 : 25 - 32
  • [28] Revealing the activity of different iron carbides for Fischer-Tropsch synthesis
    Lu, Fangxu
    Chen, Xin
    Lei, Zhigang
    Wen, Lixiong
    Zhang, Yi
    APPLIED CATALYSIS B-ENVIRONMENTAL, 2021, 281 (281)
  • [29] Effect of manganese incorporation manner on an iron-based catalyst for Fischer-Tropsch synthesis
    Li, Tingzhen
    Yang, Yong
    Zhang, Chenghua
    Tao, Zhichao
    Wan, Haijun
    An, Xia
    Xiang, Hongwei
    Li, Yongwang
    JOURNAL OF NATURAL GAS CHEMISTRY, 2007, 16 (03): : 244 - 251