Citation: WANG Lei, QING Shao-jun, ZHAO Xian-mei, TANG Ya-kun, LIU Lang, GAO Zhi-xian. Study on the catalytic hydrogenation of dimethyl maleate over Ru-Ni/Al2O3[J]. Journal of Fuel Chemistry and Technology, ;2018, 46(2): 251-256. shu

Study on the catalytic hydrogenation of dimethyl maleate over Ru-Ni/Al2O3

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  • A series of Ru-Ni/Al2O3 catalysts were prepared via adsorption-precipitation method, using Al2O3 as the support and RuCl3·xH2O and Ni(NO3)2·6H2O as precursors.Effects of pretreatment conditions and the amount of Ni on the catalytic behaviors of the catalysts were investigated.The catalytic activities of Ni-modified Ru catalysts increased with the increase of the Ni content firstly and then decreased.The highest hydrogenation activity was obtained as the atomic ratio of Ni:Ru is 6:1.The catalytic activity of Ru1Ni6/Al-fresh subjected to reduction at 200℃ has no significant difference with the sample reduced at 400℃, reaching to 1.5 times that of Ru/Al2O3 with the same pretreatment.Based on the results of XPS, XRD and H2-TPR, the reason for the promoted catalytic effect of Ni was disclosed.It was found that the dispersion of Ru could be improved as the promotion of Ni, resulting in the improvement of the catalytic performance of the Ru catalyst.
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    1. [1]

      YAN X H, ZHANG Q, ZHU M Q, WANG Z B. Selective hydrogenation of benzene to cyclohexene over Ru-Zn/ZrO2 catalysts prepared by a two-step impregnation method[J]. J Mol Catal A:Chem, 2016,413:85-93. doi: 10.1016/j.molcata.2015.12.013

    2. [2]

      SINHA N K, NEUROCK M. A first principles analysis of the hydrogenation of C1-C4 aldehydes and ketones over Ru(0001)[J]. J Catal, 2012,295:31-44. doi: 10.1016/j.jcat.2012.07.018

    3. [3]

      HELLMAN A, HONKALA K, REMEDIAKIS I N, LOGADÍTTIR Á, CARLSSON A, DAHL S, CHRISTENSEN C H, NØRSKOVJ K. Ammonia synthesis and decomposition on a Ru-based catalyst modeled by first-principles[J]. Surf Sci, 2009,603(10/12):1731-1739.  

    4. [4]

      YANG X, WANG W B, WU L P, LI X J, WANG T J, LIAO S J. Effect of confinement of TiO2 nanotubes over the Ru nanoparticles on fischer-tropsch synthesis[J]. Appl Catal A:Gen, 2016,526:45-52. doi: 10.1016/j.apcata.2016.07.021

    5. [5]

      POLANSKI J, SIUDYGA T, BARTCZAK P, KAPKOWSKI M, AMBROZKIEWICZ W, NOBISET A, SITKO R, KLIMONTKO J, SZAD E, LELATKO J. Oxide passivated Ni-supported Ru nanoparticles in silica:A new catalyst for low-temperature carbon dioxide methanation[J]. Appl Catal B:Environ, 2017,206:16-23. doi: 10.1016/j.apcatb.2017.01.017

    6. [6]

      NARITA T, MIURA H, OHIRA M, HONDOU H, SUGIYAMA K, MATSUDA T, GONZALED R D. The effect of reduction temperature on the chemisorptive properties of Ru/Al2O3:Effect of chlorine[J]. Appl Catal, 1987,32:185-190. doi: 10.1016/S0166-9834(00)80624-7

    7. [7]

      WANg L, ABUDUKELIMU N, MA Y B, QING S J, GAO Z X, AILI W. Enhanced Ru/Alumina catalyst via the adsorption-precipitation (AP) method for the hydrogenation of dimethyl maleate[J]. React Kinet Mech Cat, 2014,112(1):117-129. doi: 10.1007/s11144-014-0680-8

    8. [8]

      YANG Zhen-wei, GUO Wei-ming, LIN Jing-dong, LIAO Dai-wei. Supported catalysts with Ru-M (M=Fe, Co, Ni, Mo) bimetallic active centers for ammonia synthesis[J]. Chin J Catal, 2006,27(5):378-380.  

    9. [9]

      DAS P C, PRADHAN N C, DALAI A K, BAKHSHI N N. Carbon monoxide hydrogenation over various titania-supported Ru-Ni bimetallic catalysts[J]. Fuel Process Technol, 2004,85(13):1487-1501. doi: 10.1016/j.fuproc.2003.10.006

    10. [10]

      CRISAFULLI C, SCIRE S, MINICO S, GALVAGNO S. Ni-Ru bimetallic catalysts for the CO2 reforming of methane[J]. Appl Catal A:Gen, 2002,225(1/2):1-9.  

    11. [11]

      TADA S, KIKUCHI R, TAKAGAKI A, SUGAWARA T, OYAMA S T, URASAKI K, SATOKAWA S. Study of RuNi/TiO2 catalysts for selective CO methanation[J]. Appl Catal B:Environ, 2013,140/141:258-264. doi: 10.1016/j.apcatb.2013.04.024

    12. [12]

      WANG, ABUDUKELIMU Nuermaimaiti, MA, QING, GAO, AILI Wumanjiang. Catalytic performance of Fe-modified Ru/Al2O3 in the hydrogenation of dimethyl maleate[J]. J Fuel Chem Technol, 2014,42(7):839-844.  

    13. [13]

      PAOLO B, CHE M, LOUIS C. Metal particle size in Ni/SiO2 materials prepared by deposition-precipitation:Influence of the nature of the Ni(Ⅱ) phase and of its interaction with the support[J]. J Phys Chem B, 1999,103(30):6171-6178. doi: 10.1021/jp990115t

    14. [14]

      CHAN H Y H, TAKOUDIS C G, WEAVER M J. High-pressure oxidation of ruthenium as probed by surface-enhanced raman and X-ray photoelectron spectroscopies[J]. J Catal, 1997,172(2):336-345. doi: 10.1006/jcat.1997.1841

    15. [15]

      OKAl J. Characterization and thermal stability of ruthenium nanoparticles supported on γ-alumina[J]. Catal Commun, 2010,11(6):508-512. doi: 10.1016/j.catcom.2009.12.003

    16. [16]

      LIN B Y, WANG R, LIN J X, NI J, WEI K M. Effect of carbon and chlorine on the performance of carbon-covered alumina supported Ru catalyst for ammonia synthesis[J]. Catal Commun, 2011,12(15):1452-1457. doi: 10.1016/j.catcom.2011.05.029

    17. [17]

      LI B, HONG X, LIN J J, HU G S, YU Q, WANG Y J, LUO M F, LU J Q. Promoting effect of Ir on the catalytic property of Ru/ZnO catalysts for selective hydrogenation of crotonaldehyde[J]. Appl Surf Sci, 2013,280:179-185. doi: 10.1016/j.apsusc.2013.04.122

    18. [18]

      MASALSKA A. Properties and activities of ZSM-5+Al2O3 supported RuNi catalysts in 1-methylnaphthalene hydrogenation:Effect of Ru precursors[J]. Catal Today, 2011,176(1):258-262. doi: 10.1016/j.cattod.2010.12.018

    19. [19]

      BRAOS-GARCIA P, GARCIA-SANCHO C, INFANTES-MOLINA A, RODRÍGUEZ-CASTELLÍN E, JIMÉNEZ-LÍPEZ A. Bimetallic Ru/Ni supported catalysts for the gas phase hydrogenation of acetonitrile[J]. Appl Catal A:Gen, 2010,381(1/2):132-144.  

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