227
62. Pattamakomsan K et al (2010) Effect of mixed Al2O3 structure between θ- and α-Al2O3 on
the properties of Pd/Al2O3 in the selective hydrogenation of 1,3-butadiene. Catal Commun
11(5):311–316
63. Hou R et al (2015) Effect of oxide supports on Pd–Ni bimetallic catalysts for 1,3-butadiene
hydrogenation. Appl Catal A Gen 490:17–23
64. Ciebien JF et al (1999) Membrane catalysts for partial hydrogenation of 1,3-butadiene: catalytic properties of palladium nanoclusters synthesized within diblock copolymer films. Mater
Sci Eng C 7(1):45–50
65. Silvestre-Albero J et al (2005) Atmospheric pressure studies of selective 1,3-butadiene
hydrogenation on Pd single crystals: effect of CO addition. J Catal 235(1):52–59
66. Silvestre-Albero J et al (2006) From Pd nanoparticles to single crystals: 1,3-butadiene hydrogenation on well-defined model catalysts. Chem Commun (1):80–82
67. Silvestre-Albero J et al (2006) Atmospheric pressure studies of selective 1,3-butadiene
hydrogenation on well-defined Pd/Al2O3/NiAl(110) model catalysts: effect of Pd particle
size. J Catal 240(1):58–65
68. Cooper A et al (2014) Design of surface sites for the selective hydrogenation of 1,3-butadiene on Pd nanoparticles: Cu bimetallic formation and sulfur poisoning. Catal Sci Technol
4(5):1446–1455
69. Sárkány A et al (1995) Hydrogenation of 1,3-butadiene over catalysts prepared from amorphous Pd2Ni50Nb48 ribbon: effect of self-poisoning on competitive adsorption. Appl Catal
A Gen 124(2):L181–L187
70. Ponec V (1983) Catalysis by alloys in hydrocarbon reactions. In: Eley HPDD, Paul BW (eds)
Advances in catalysis, vol 32. Academic, New York, pp 149–214
71. van Santen RA (1982) Chemical-bonding aspects of heterogeneous catalysis. I. Chemisorption
by metals and alloys. Recueil des Travaux Chimiques des Pays-Bas 101(4):121–136
72. Boitiaux JP et al (1983) Preparation and characterisation of highly dispersed palladium catalysts on low surface alumina, their notable effects in hydrogenation. In: Poncelet PGG, Jacobs
PA (eds) Studies in surface science and catalysis, vol 16. Elsevier, Amsterdam, pp 123–134
73. Schimpf S et al (2002) Supported gold nanoparticles: in-depth catalyst characterization and
application in hydrogenation and oxidation reactions. Catal Today 72(1–2):63–78
74. Umpierre AP et al (2005) Selective hydrogenation of 1,3-butadiene to 1-butene by Pd(0)
nanoparticles embedded in imidazolium ionic liquids. Adv Synth Catal 347(10):1404–1412
75. Zhang X, Xu BQ (2005) Size effect of zirconia nanoparticles in Au/ZrO2 catalysts for
1,3-butadiene hydrogenation. Chem J Chin Univ 26(1):106–110
76. Tardy B et al (1991) Catalytic hydrogenation of 1,3-butadiene on Pd particles evaporated on
carbonaceous supports: particle size effect. J Catal 129(1):1–11
77. Berhault G et al (2007) Preparation of nanostructured Pd particles using a seeding synthesis approach-application to the selective hydrogenation of buta-1,3-diene. Appl Catal A Gen
327(1):32–43
78. Dal Santo V et al (2012) Selective butadiene hydrogenation by Pd nanoparticles deposed
onto nano-sized oxide supports by CVD of Pd-hexafluoroacetylacetonate. Inorg Chim Acta
380(1):216–222
79. Delannoy L et al (2014) Selective hydrogenation of butadiene over TiO2 supported copper,
gold and gold-copper catalysts prepared by deposition-precipitation. Phys Chem Chem Phys
16(48):26514–26527
80. Lu F et al (2014) Plant-mediated synthesis of Ag-Pd alloy nanoparticles and their application
as catalyst toward selective hydrogenation. ACS Sustain Chem Eng 2(5):1212–1218
81. Luza L et al (2014) The partial hydrogenation of 1,3-dienes catalysed by soluble transitionmetal nanoparticles. ChemCatChem 6(3):702–710
82. Massard R et al (2007) Strained Pd overlayers on Ni nanoparticles supported on alumina and
catalytic activity for buta-1,3-diene selective hydrogenation. J Catal 245(1):133–143
Selective Hydrogenation of 1,3-Butadiene to 1-Butene: Review on Catalysts, Selectivity…
62. Pattamakomsan K et al (2010) Effect of mixed Al2O3 structure between θ- and α-Al2O3 on
the properties of Pd/Al2O3 in the selective hydrogenation of 1,3-butadiene. Catal Commun
11(5):311–316
63. Hou R et al (2015) Effect of oxide supports on Pd–Ni bimetallic catalysts for 1,3-butadiene
hydrogenation. Appl Catal A Gen 490:17–23
64. Ciebien JF et al (1999) Membrane catalysts for partial hydrogenation of 1,3-butadiene: catalytic properties of palladium nanoclusters synthesized within diblock copolymer films. Mater
Sci Eng C 7(1):45–50
65. Silvestre-Albero J et al (2005) Atmospheric pressure studies of selective 1,3-butadiene
hydrogenation on Pd single crystals: effect of CO addition. J Catal 235(1):52–59
66. Silvestre-Albero J et al (2006) From Pd nanoparticles to single crystals: 1,3-butadiene hydrogenation on well-defined model catalysts. Chem Commun (1):80–82
67. Silvestre-Albero J et al (2006) Atmospheric pressure studies of selective 1,3-butadiene
hydrogenation on well-defined Pd/Al2O3/NiAl(110) model catalysts: effect of Pd particle
size. J Catal 240(1):58–65
68. Cooper A et al (2014) Design of surface sites for the selective hydrogenation of 1,3-butadiene on Pd nanoparticles: Cu bimetallic formation and sulfur poisoning. Catal Sci Technol
4(5):1446–1455
69. Sárkány A et al (1995) Hydrogenation of 1,3-butadiene over catalysts prepared from amorphous Pd2Ni50Nb48 ribbon: effect of self-poisoning on competitive adsorption. Appl Catal
A Gen 124(2):L181–L187
70. Ponec V (1983) Catalysis by alloys in hydrocarbon reactions. In: Eley HPDD, Paul BW (eds)
Advances in catalysis, vol 32. Academic, New York, pp 149–214
71. van Santen RA (1982) Chemical-bonding aspects of heterogeneous catalysis. I. Chemisorption
by metals and alloys. Recueil des Travaux Chimiques des Pays-Bas 101(4):121–136
72. Boitiaux JP et al (1983) Preparation and characterisation of highly dispersed palladium catalysts on low surface alumina, their notable effects in hydrogenation. In: Poncelet PGG, Jacobs
PA (eds) Studies in surface science and catalysis, vol 16. Elsevier, Amsterdam, pp 123–134
73. Schimpf S et al (2002) Supported gold nanoparticles: in-depth catalyst characterization and
application in hydrogenation and oxidation reactions. Catal Today 72(1–2):63–78
74. Umpierre AP et al (2005) Selective hydrogenation of 1,3-butadiene to 1-butene by Pd(0)
nanoparticles embedded in imidazolium ionic liquids. Adv Synth Catal 347(10):1404–1412
75. Zhang X, Xu BQ (2005) Size effect of zirconia nanoparticles in Au/ZrO2 catalysts for
1,3-butadiene hydrogenation. Chem J Chin Univ 26(1):106–110
76. Tardy B et al (1991) Catalytic hydrogenation of 1,3-butadiene on Pd particles evaporated on
carbonaceous supports: particle size effect. J Catal 129(1):1–11
77. Berhault G et al (2007) Preparation of nanostructured Pd particles using a seeding synthesis approach-application to the selective hydrogenation of buta-1,3-diene. Appl Catal A Gen
327(1):32–43
78. Dal Santo V et al (2012) Selective butadiene hydrogenation by Pd nanoparticles deposed
onto nano-sized oxide supports by CVD of Pd-hexafluoroacetylacetonate. Inorg Chim Acta
380(1):216–222
79. Delannoy L et al (2014) Selective hydrogenation of butadiene over TiO2 supported copper,
gold and gold-copper catalysts prepared by deposition-precipitation. Phys Chem Chem Phys
16(48):26514–26527
80. Lu F et al (2014) Plant-mediated synthesis of Ag-Pd alloy nanoparticles and their application
as catalyst toward selective hydrogenation. ACS Sustain Chem Eng 2(5):1212–1218
81. Luza L et al (2014) The partial hydrogenation of 1,3-dienes catalysed by soluble transitionmetal nanoparticles. ChemCatChem 6(3):702–710
82. Massard R et al (2007) Strained Pd overlayers on Ni nanoparticles supported on alumina and
catalytic activity for buta-1,3-diene selective hydrogenation. J Catal 245(1):133–143
Selective Hydrogenation of 1,3-Butadiene to 1-Butene: Review on Catalysts, Selectivity…
