期刊文献+

ecent advances in selective acetylene hydrogenation using palladium containing catalysts 被引量:14

ecent advances in selective acetylene hydrogenation using palladium containing catalysts
原文传递
导出
摘要 Recent advances with Pd containing catalysts for the selective hydrogenation of acetylene are described. The overview classifies enhancement of catalytic proper- ties for monometallic and bimetallic Pd catalysts. Activity/ selectivity of Pd catalysts can be modified by controllingparticle shape/morphology or immobilisation on a support which interacts strongly with Pd particles. In both cases enhanced ethylene selectivity is generally associated with modifying ethylene adsorption strength and/or changes to hydride formation. Inorganic and organic selectivity modifiers (i.e., species adsorbed onto Pd particle surface) have also been shown to enhance ethylene selectivity. Inorganic modifiers such as TiO2 change Pd ensemble size and modify ethylene adsorption strength whereas organic modifiers such as diphenylsulfide are thought to create a surface template effect which favours acetylene adsorption with respect to ethylene. A number of metals and synthetic approaches have been explored to prepare Pd bimetallic catalysts. Examples where enhanced selectivity is observed are generally associated with decreased Pd ensemble size and/or hindering of the ease with which an unselective hydride phase is formed for Pd. A final class of bimetallic catalysts are discussed where Pd is not thought to be the primary reaction site but merely acts as a site where hydrogen dissociation and spillover occurs onto a second metal (Cu or Au) where the reaction takes place more selectively. Recent advances with Pd containing catalysts for the selective hydrogenation of acetylene are described. The overview classifies enhancement of catalytic proper- ties for monometallic and bimetallic Pd catalysts. Activity/ selectivity of Pd catalysts can be modified by controllingparticle shape/morphology or immobilisation on a support which interacts strongly with Pd particles. In both cases enhanced ethylene selectivity is generally associated with modifying ethylene adsorption strength and/or changes to hydride formation. Inorganic and organic selectivity modifiers (i.e., species adsorbed onto Pd particle surface) have also been shown to enhance ethylene selectivity. Inorganic modifiers such as TiO2 change Pd ensemble size and modify ethylene adsorption strength whereas organic modifiers such as diphenylsulfide are thought to create a surface template effect which favours acetylene adsorption with respect to ethylene. A number of metals and synthetic approaches have been explored to prepare Pd bimetallic catalysts. Examples where enhanced selectivity is observed are generally associated with decreased Pd ensemble size and/or hindering of the ease with which an unselective hydride phase is formed for Pd. A final class of bimetallic catalysts are discussed where Pd is not thought to be the primary reaction site but merely acts as a site where hydrogen dissociation and spillover occurs onto a second metal (Cu or Au) where the reaction takes place more selectively.
出处 《Frontiers of Chemical Science and Engineering》 SCIE EI CAS CSCD 2015年第2期142-153,共12页 化学科学与工程前沿(英文版)
关键词 ACETYLENE ETHYLENE selective hydrogenation palladium BIMETALLIC acetylene, ethylene, selective hydrogenation,palladium, bimetallic
  • 相关文献

参考文献65

  • 1Tiedtke D B, Cheung T T P, Leger J, Zisman S A, Bergmeister J J, Delzer G A. In: 13th Ethylene Producers Conference, 2001, 10: 1-21.
  • 2Borodzinski A, Bond G C. Selective Hydrogenation of ethyne in ethene—rich streams on palladium catalysts. Part 1. Effect of changes to the catalyst during reaction. Catalysis Reviews, 2006,48 (2): 91-144.
  • 3Borodzinski A, Bond G C. Selective hydrogenation of ethyne in ethene—rich streams on palladium catalysts. Part 2: Steady—state kinetics and effects of palladium particle size, carbon monoxide, and promoters. Catalysis Reviews, 2008, 50(3): 379^169.
  • 4Nikolaev S A, Zanaveskin I L N, Smirnov V V, Averyanov V A, Zanaveskin K I. Catalytic hydrogenation of alkyne and alkadiene impurities from alkenes. Practical and theoretical aspects. RussianChemical Reviews, 2009, 78(3): 231-247.
  • 5"Garcia-Mota M, Gomez-Diaz J, Novell-Leruth G, Vargas-FuentesC, Bellarosa L, Bridier B, Perez-Ramirez J, Lopez N. A density functional theory study of the “mythic” Lindlar hydrogenation catalyst. Theoretical Chemistry Accounts, 2011, 128(4): 663-673".
  • 6Bridier B, Lopez N, Perez-Ramirez J. Molecular understanding of alkyne hydrogenation for the design of selective catalysts. Dalton Transactions, 2010, 39(36): 8412-8419.
  • 7Segura Y, Lopez N, Perez-Ramirez J. Origin of the superior hydrogenation selectivity of gold nanoparticles in alkyne + alkene mixtures: Triple- versus double-bond activation. Journal of Catalysis, 2007, 247(2): 383-386.
  • 8Vile G, Baudouin D, Remediakis I N, Coperet C, Lopez N, Perez-Ramirez J. Silver nanoparticles for olefin production: New insights into the mechanistic description of propyne hydrogenation. ChemCatChem, 2013, 5(12): 3750-3759.
  • 9Wehrli J T, Thomas D J, Wainwright M S, Trimm D L, Cant N W. Selective hydrogenation of propyne over supported copper catalysts: Influence of support. Applied Catalysis, 1991, 70(1): 253-262.
  • 10Bridier B, Lopez N, Perez-Ramirez J. Partial hydrogenation of propyne over copper-based catalysts and comparison with nickel-based analogues. Journal of Catalysis, 2010, 269(1): 80-92.

同被引文献91

引证文献14

二级引证文献12

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部