Citation: SUN Yong-shi, WU Bao-shan, LI Yong-wang. Promoting effects of Cu, Ni, Ru and Pt on Fe-based catalysts in Fischer-Tropsch[J]. Journal of Fuel Chemistry and Technology, ;2015, 43(7): 829-838. shu

Promoting effects of Cu, Ni, Ru and Pt on Fe-based catalysts in Fischer-Tropsch

  • Corresponding author: WU Bao-shan, 
  • Received Date: 27 January 2015
    Available Online: 3 March 2015

    Fund Project: 国家重点基础研究发展规划(973计划, 2011CB201401) (973计划, 2011CB201401) 中国科学院知识创新工程项目(KJCX2-YW-N41)。 (KJCX2-YW-N41)

  • The promoting effects of Cu, Ni, Ru and Pt on Fe-based catalysts in Fischer-Tropsch Synthesis were investigated. XRD results indicated that both Cu and Ni can enhance the dispersion of fresh catalysts. XPS results showed that all these metal promoters are enriched on the catalyst surface, whereas four promoters are different in their electronic interaction strength with Fe. H2-TPR results suggested that Cu, Ru and Pt can be reduced at first to corresponding metal species, which can then promote the reduction of Fe2O3 to Fe3O4 significantly; however, the influence of Ni on catalyst reduction is of less significance. CO-TPD results illustrated that the addition of the Cu, Pt and Ni can improve the adsorption of CO on the catalysts. The performances of these catalysts in Fischer-Tropsch synthesis was evaluated in a fixed-bed reactor, which indicated that the activity of CO hydrogenation is enhanced through the addition of these metal promoters; the activity of related catalysts follows the order of Fe3Cu > Fe3Pt > Fe3Ni > Fe3Ru > Fe, whereas the selectivity to CH4 increases in the order of Fe3Ni > Fe3Ru > Fe3Cu > Fe3Pt > Fe.
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    1. [1]

      [1] DRY M E. The Fischer-Tropsch process: 1950-2000[J]. Catal Today, 2002, 71(3/4): 227-241.

    2. [2]

      [2] DRY M E. Present and future applications of the Fischer-Tropsch process[J]. Appl Catal A: Gen, 2004, 276 (1): 1-3.

    3. [3]

      [3] JIN Y M, DATYE A K. Phase transformations in iron Fischer-Tropsch catalysts during temperature-programmed reduction[J]. J Catal, 2000, 196(1): 8-17.

    4. [4]

      [4] BUKUR D B, CARRETO-VAZQUEZ V H, MA W. Catalytic performance and attrition strength of spray-dried iron catalysts for slurry phase Fischer-Tropsch synthesis[J]. Appl Catal A: Gen, 2010, 388(1/2): 240-247.

    5. [5]

      [5] BLIGAARD T, NORSKOV J K, DAHL S, MATTHIESEN J, CHRISTENSEN C H, SEHESTED J. The Brφnsted-Evans-Polanyi relation and the volcano curve in heterogeneous catalysis[J]. J Catal, 2004, 224(1): 206-217.

    6. [6]

      [6] VANNICE M A. The catalytic synthesis of hydrocarbons from H2/CO mixtures over the Group VIII metals: The catalytic behavior of silica-supported metals[J]. J Catal, 1977, 50(2): 228-236.

    7. [7]

      [7] LI T Z, WANG H L, YANG Y, XIANG H W, LI Y W. Study on an iron-nickel bimetallic Fischer-Tropsch synthesis catalyst[J]. Fuel Process Technol, 2014, 118: 117-124.

    8. [8]

      [8] SMIT E, BEALE A M, NIKITENKO S, WECKHUYSEN B M. Local and long range order in promoted iron-based Fischer-Tropsch catalysts: A combined in situ X-ray absorption spectroscopy/wide angle X-ray scattering study[J]. J Catal, 2009, 262(2): 244-256.

    9. [9]

      [9] BAHOME M C, JEWELL L L, PADAYACHY K, HILDEBRANDT D, GLASSER D, DATYE A K, COVILLE N J. Fe-Ru small particle bimetallic catalysts supported on carbon nanotubes for use in Fischer-Tropsch synthesis[J]. Appl Catal A: Gen, 2007, 328(2): 243-251.

    10. [10]

      [10] CALDERONE V R, CALDERONE, SHIJU N R, FERR D C, ROTHENBERGA G. Biemetallc catalysts for the Fischer-Tropsch reaction[J]. Green Chem, 2011, 13(8): 1925-2216.

    11. [11]

      [11] ZHANG C H, YANG Y, TENG B T, LI T Z, ZHENG H Y, XIANG H W, LI Y W. Study of an iron-manganese Fischer-Tropsch synthesis catalyst promoted with copper[J]. J Catal, 2006, 237(2): 405-415.

    12. [12]

      [12] KÖLBEL H, RALEK M. The Fischer-Tropsch synthesis in the liquid phase[J]. Catal Rev Sci Eng, 1980, 21(2): 226.

    13. [13]

      [13] BUKUR D B, MUKESH D S, PATAL A. Promoter effects on precipitated iron catalysts for Fischer-Tropsch synthesis[J]. Ind Eng Chem Res, 1990, 29(2): 194-204.

    14. [14]

      [14] WIELERS A F H, HOP C E C A, BEIJNUM J, KRAAN A M, GEUS J W. On the properties of silica-supported bimetallic Fe-Cu catalysts Part I: Preparation and characterization[J]. J Catal, 1990, 121(2): 364-374.

    15. [15]

      [15] VANNICE M A, GARTEN R L. Metal-support effects on the activity and selectivity of Ni catalysts in CO/ H2 synthesis reactions[J]. J Catal, 1979, 56(2): 236-248.

    16. [16]

      [16] VANNICE M A, GARTEN R L. CO hydrogenation reactions over titania-supported nickel[J]. J Catal, 1980, 66(1): 242-247.

    17. [17]

      [17] UNMUTH E E, SCHWARTZ L H, BUTT J B. Iron alloy Fischer-Tropsch catalysts: I: Carburization studies of the Fe-Ni system[J]. J Catal, 1980, 63(2): 404-414.

    18. [18]

      [18] NAGORNY K, BUBERT S. Mössbauer spectroscopic investigations of bimetallic FeCo, FeNi, and FeRu model catalysts supported on magnesium hydroxide carbonate[J]. J Catal, 1987, 108(1): 112-134.

    19. [19]

      [19] TAKAHARA I, MURATE K, SATO K, MIURA Y, INABA M. Activity and deactivation nature of Ru/MnCO3 catalysts for Fischer-Tropsch reaction[J]. Appl Catal A: Gen, 2013, 450(1): 80-87.

    20. [20]

      [20] WANG L L, WU B S, LI Y W. Effects of Ru and Cu promoters on Fischer-Tropsch synthesis over Fe-based catalysts[J]. Chin J Catal, 2011, 32(3): 495-501.

    21. [21]

      [21] HUBER G W, BARTHOLOMEW H. Pt-Promotion of Co/SiO2 Fischer-Tropsch synthesis catalysts[J]. Stud Surf Sci Catal, 2001, 136(2): 283-288.

    22. [22]

      [22] TSUBAKI N, SUN S L, FUJIMOTO K. Different functions of the noble metals added to cobalt catalysts for Fischer-Tropsch synthesis[J]. J Catal, 2001, 199(2): 236-246.

    23. [23]

      [23] XU J, BARTHOLOMEWA C H, SUDWEEKSB J, EGGETTB D L. Design, synthesis, and catalytic properties of silica-supported, Pt-promoted iron Fischer-Tropsch catalysts[J]. Top Catal, 2003, 26(1): 55-71.

    24. [24]

      [24] YU W Q, WU B S, XU J, TAO Z C, XIANG H W, LI Y W. Effects of Pt impregnation on a precipitated iron-based Fischer-Tropsch synthesis catalyats[J]. Catal Lett, 2008, 125(1/2): 116-122.

    25. [25]

      [25] BIESINGER M C. Resolving surface chemical states in XPS analysis of first row transition metals, oxides and hydroxides: Sc, Ti, V, Cu and Zn[J]. Appl Surf Sci, 2010, 257(7): 887-898.

    26. [26]

      [26] SILVAIN J F, CHAZELAS J, TROMBERT S. Copper electroless deposition on NiTi shape memory alloy: An XPS study of Sn-Pd-Cu growth[J]. Appl Surf Sci, 2000, 153(4): 211-217.

    27. [27]

      [27] FIERMANS L, GRYSE R D, DONCKER G D, JACOBS P A, MARTENSJ A. Pd segregation to the surface of bimetallic Pt-Pd particles supported on H-β zeolite evidenced with X-Ray photoelectron spectroscopy and argon cation bombardment[J]. J Catal, 2000, 193 (1): 108-114.

    28. [28]

      [28] LEWERA A, ZHOU W P, VERICAT C, CHUNG J H, HASCH R, WIECKOWSKI A, BAGUS P S. XPS and reactivity study of bimetallic nanoparticlescontaining Ru and Pt supported on a gold disk[J]. Electrochim Acta, 2006, 51(19): 3950-3956.

    29. [29]

      [29] WACHS I E, DUYER D J, IGLESIA E. Characterization of Fe, Fe-Cu, And Fe-Ag fischer-tropsch catalysts[J]. Appl Catal, 1984, 12(2): 201-217.

    30. [30]

      [30] SMIT E, GROOT F M F, BLUME R, HAVECKER M, KNOP-GERICKE A, WECKHUYSEN B M. The role of Cu on the reduction behavior and surface properties of Fe-based Fischer-Tropsch catalysts[J]. Phys Chem Chem Phys, 2010, 12(6): 667-680.

    31. [31]

      [31] GUCZI L, KIRICSI I. Zeolite supported mono-and bimetallic systems: Structure and performance as CO hydrogenation catalysts[J]. Appl Catal A: Gen, 1999, 186(1/2): 375-394.

    32. [32]

      [32] GUCZI L, BECK A, HORVATH A, HORVATH D. From molecular clusters to metal nanoparticles[J]. Top Catal, 2002, 19(1): 157-163.

    33. [33]

      [33] LI X C, WU M, LAI Z H, HE F. Studies on nickel-based catalysts for carbon dioxide reforming of methane[J]. Appl Catal A: Gen, 2005, 290(1/2): 81-86.

    34. [34]

      [34] BENZIGER J, MADIX R J. The effects of carbon, oxygen, sulfur and potassium adlayers on CO and H2 adsorption on Fe(100)[J]. Surf Sci, 1980, 94(1): 119-153.

    35. [35]

      [35] 黄仲涛, 耿建铭. 工业催化[M]. 第二版. 北京: 化学工业出版社, 2006. (HUANG Zhong-tao, GENG Jian-min. Industral catalysis[M]. 2en ed.Beijing: Chemical Industry Press, 2006.)

    36. [36]

      [36] DRY M E, SHINGLES T, BOSHOFF L J, OOSTHUIZEN G J. Heats of chemisorption on promoted iron surfaces and the role of alkali in Fischer-Tropsch synthesis[J]. J Catal, 1969, 15(2): 190-199.

    37. [37]

      [37] HEXANA W M, COVILLE N J. Indium as a chemical promoter in Fe-based Fischer-Tropsch synthesis[J]. Appl Catal A: Gen, 2010, 377(1/2): 150-157.

    38. [38]

      [38] MA W P, KUGLE E L, DADYBURJOR D B. Promotional effect of copper on activity and selectivity to hydrocarbons and oxygenates for Fischer-Tropsch synthesis over potassium-promoted iron catalysts supported on activated carbon[J]. Energy Fuels, 2011, 25(5): 1931-1938.

    39. [39]

      [39] RAUPP G B AND DELGASS W N. Mössbauer investigation of supported Fe and FeNi catalysts: II. Carbides formed Fischer-Tropsch synthesis[J]. J Catal, 1979, 58(3): 348-360.

    40. [40]

      [40] MILLER D G, MOSKOVITS M. A study of the effects of potassium addition to supported iron catalysts in the Fischer-Tropsch reaction[J]. J Phys Chem, 1988, 92(21): 6081-6085.

    41. [41]

      [41] LI S, LI A, KRISHNAMOORTHY S, IGLESIA E. Effects of Zn, Cu, and K promoters on the structure and on the reduction, carburization, and catalytic behavior of iron-based Fischer-Tropsch synthesis catalysts[J]. Catal Lett, 2001, 77(4): 197-205.

    42. [42]

      [42] 张成华, 杨勇, 陶智超, 相宏伟, 李永旺. Ni助剂FeMnK/SiO2费托合成催化剂的结构性质及还原碳化行为研究[J]. 燃料化学学报, 2006, 34(6): 695-699. (ZHANG Cheng-hua, YANG Yong, TAO Zhi-chao, XIANG Hong-wei, LI Yong-wang. Structural properties and reduction behavior of Ni promoted FeMnK/SiO2 catalysts for Fischer-Tropsch synthesis[J]. J Fuel Chem Technol, 2006, 34(6): 695-699.)

    43. [43]

      [43] 余伟奇. 贵金属改性铁基催化剂的制备、表征及F-T合成反应性能研究. 太原: 中国科学院山西煤炭化学研究所, 2009. (YU Wei-qi. Preparation, characterization and Fischer-Tropsch synthesis performance of nobel metal modified iron-based catalysts.Taiyuan: Institute of Coal Chemistry, Chinese Academy of Science, 2009.)

    44. [44]

      [44] MA W P, KUGLE E L, DADYBURJOR D B. Potassium effects on activated-carbon-supported iron catalysts for Fischer-Tropsch synthesis[J]. Energy Fuels, 2007, 21(4): 1832-1842.

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