350
27. Wolfbeisser A, Sophiphun O, Bernardi J, Wittayakun J, Fottinger K et al (2016) Methane dry
reforming over ceria-zirconia supported Ni catalysts. Catal Today 277:234–245
28. Taufiq-Yap YH, Sudarno RU, Zainal Z (2013) CeO 2 -SiO 2 supported nickel catalysts for dry
reforming of methane toward syngas production. Appl Catal A Gen 468:359–369
29. Pompeo F, Nichio NN, Souza MMVM, Cesar DV, Ferretti OA et al (2007) Study of Ni and
Pt catalysts supported on alpha-Al 2 O 3 and ZrO 2 applied in methane reforming with CO 2 . Appl
Catal A Gen 316:175–183
30. Katsutoshi Nagaoka M, Aika K-i (2001) Titania supported ruthenium as a coking-resistant
catalyst for high pressure dry reforming of methane. Catal Commun 2:255–260
31. Alipour Z, Rezaei M, Meshkani F (2014) Effect of alkaline earth promoters (MgO, CaO, and
BaO) on the activity and coke formation of Ni catalysts supported on nanocrystalline Al 2 O 3 in
dry reforming of methane. J Ind Eng Chem 20:2858–2863
32. Daza CE, Kiennemann A, Moreno S, Molina R (2009) Dry reforming of methane using Ni-Ce
catalysts supported on a modified mineral clay. Appl Catal A Gen 364:65–74
33. Daza C, Kiennemann A, Moreno S, Molina R (2009) Stability of Ni-Ce catalysts supported
over Al-PVA modified mineral clay in dry reforming of methane. Energy Fuel 23:3497–3509
34. San-Jose-Alonso D, Juan-Juan J, Illan-Gomez MJ, Roman-Martinez MC (2009) Ni, Co and
bimetallic Ni-Co catalysts for the dry reforming of methane. Appl Catal A Gen 371:54–59
35. Ray K, Sengupta S, Deo G (2017) Reforming and cracking of CH 4 over Al 2 O 3 supported Ni,
Ni-Fe and Ni-Co catalysts. Fuel Process Technol 156:195–203
36. Gamba O, Moreno S, Molina R (2011) Catalytic performance of Ni-Pr supported on delaminated clay in the dry reforming of methane. Int J Hydrogen Energy 36:1540–1550
37. Kathiraser Y, Oernar U, Saw ET, Li ZW, Kawi S (2015) Kinetic and mechanistic aspects for
CO 2 reforming of methane over Ni based catalysts. Chem Eng J 278:62–78
38. Akpan E, Sun YP, Kumar P, Ibrahim H, Aboudheir A et al (2007) Kinetics, experimental and
reactor modeling studies of the carbon dioxide reforming of methane (CDRM) over a new Ni/
CeO 2 -ZrO 2 catalyst in a packed bed tubular reactor. Chem Eng Sci 62:4012–4024
39. Bradford MCJ, Vannice MA (1996) Catalytic reforming of methane with carbon dioxide over
nickel catalysts .2. Reaction. Appl Catal A Gen 142:97–122
40. Tsipouriari VA, Verykios XE (2001) Kinetic study of the catalytic reforming of methane with
carbon dioxide to synthesis gas over Ni/La 2 O 3 catalyst. Catal Today 64:83–90
41. Zhang ZL, Verykios XE (1996) Carbon dioxide reforming of methane to synthesis gas over Ni/
La 2 O 3 catalysts. Appl Catal A Gen 138:109–133
42. Tsipouriari VA, Verykios XE (1999) Carbon and oxygen reaction pathways of CO 2 reforming
of methane over Ni/La 2 O 3 and Ni/Al 2 O 3 catalysts studied by isotopic tracing techniques. J
Catal 187:85–94
43. Zhang ZL, Verykios XE (1996) Mechanistic aspects of carbon dioxide reforming of methane
to synthesis gas over Ni catalysts. Catal Lett 38:175–179
44. Zhang YS, Zhang SJ, Gossage JL, Lou HH, Benson TJ (2014) Thermodynamic analyses of
Tr-reforming reactions to produce syngas. Energy Fuel 28:2717–2726
45. Garcia-Vargas JM, Valverde JL, de Lucas-Consuegra A, Gomez-Monedero B, Dorado F et al
(2013) Methane tri-reforming over a Ni/beta-SiC-based catalyst: Optimizing the feedstock
composition. Int J Hydrogen Energy 38:4524–4532
46. Song CS, Pan W (2004) Tri-reforming of methane: a novel concept for synthesis of industrially useful syngas with desired H 2 /CO ratios using flue gas of power plants without CO 2 preseparation. Abstr Pap Am Chem Soc 227:U1077–U1077
47. Noureldin MMB, Elbashir NO, Gabriel KJ, El-Halwagi MM (2015) A process integration
approach to the assessment of CO 2 fixation through dry reforming. ACS Sustain Chem Eng
3:625–636
48. Kumar R, Kumar K, Choudary NV, Pant KK (2019) Effect of support materials on the performance of Ni-based catalysts in tri-reforming of methane. Fuel Process Technol 186:40–52
49. Singha RK, Shukla A, Yadav A, Adak S, Iqbal Z et al (2016) Energy efficient methane trireforming for synthesis gas production over highly coke resistant nanocrystalline Ni-ZrO 2
catalyst. Appl Energy 178:110–125
S. Gupta et al.
27. Wolfbeisser A, Sophiphun O, Bernardi J, Wittayakun J, Fottinger K et al (2016) Methane dry
reforming over ceria-zirconia supported Ni catalysts. Catal Today 277:234–245
28. Taufiq-Yap YH, Sudarno RU, Zainal Z (2013) CeO 2 -SiO 2 supported nickel catalysts for dry
reforming of methane toward syngas production. Appl Catal A Gen 468:359–369
29. Pompeo F, Nichio NN, Souza MMVM, Cesar DV, Ferretti OA et al (2007) Study of Ni and
Pt catalysts supported on alpha-Al 2 O 3 and ZrO 2 applied in methane reforming with CO 2 . Appl
Catal A Gen 316:175–183
30. Katsutoshi Nagaoka M, Aika K-i (2001) Titania supported ruthenium as a coking-resistant
catalyst for high pressure dry reforming of methane. Catal Commun 2:255–260
31. Alipour Z, Rezaei M, Meshkani F (2014) Effect of alkaline earth promoters (MgO, CaO, and
BaO) on the activity and coke formation of Ni catalysts supported on nanocrystalline Al 2 O 3 in
dry reforming of methane. J Ind Eng Chem 20:2858–2863
32. Daza CE, Kiennemann A, Moreno S, Molina R (2009) Dry reforming of methane using Ni-Ce
catalysts supported on a modified mineral clay. Appl Catal A Gen 364:65–74
33. Daza C, Kiennemann A, Moreno S, Molina R (2009) Stability of Ni-Ce catalysts supported
over Al-PVA modified mineral clay in dry reforming of methane. Energy Fuel 23:3497–3509
34. San-Jose-Alonso D, Juan-Juan J, Illan-Gomez MJ, Roman-Martinez MC (2009) Ni, Co and
bimetallic Ni-Co catalysts for the dry reforming of methane. Appl Catal A Gen 371:54–59
35. Ray K, Sengupta S, Deo G (2017) Reforming and cracking of CH 4 over Al 2 O 3 supported Ni,
Ni-Fe and Ni-Co catalysts. Fuel Process Technol 156:195–203
36. Gamba O, Moreno S, Molina R (2011) Catalytic performance of Ni-Pr supported on delaminated clay in the dry reforming of methane. Int J Hydrogen Energy 36:1540–1550
37. Kathiraser Y, Oernar U, Saw ET, Li ZW, Kawi S (2015) Kinetic and mechanistic aspects for
CO 2 reforming of methane over Ni based catalysts. Chem Eng J 278:62–78
38. Akpan E, Sun YP, Kumar P, Ibrahim H, Aboudheir A et al (2007) Kinetics, experimental and
reactor modeling studies of the carbon dioxide reforming of methane (CDRM) over a new Ni/
CeO 2 -ZrO 2 catalyst in a packed bed tubular reactor. Chem Eng Sci 62:4012–4024
39. Bradford MCJ, Vannice MA (1996) Catalytic reforming of methane with carbon dioxide over
nickel catalysts .2. Reaction. Appl Catal A Gen 142:97–122
40. Tsipouriari VA, Verykios XE (2001) Kinetic study of the catalytic reforming of methane with
carbon dioxide to synthesis gas over Ni/La 2 O 3 catalyst. Catal Today 64:83–90
41. Zhang ZL, Verykios XE (1996) Carbon dioxide reforming of methane to synthesis gas over Ni/
La 2 O 3 catalysts. Appl Catal A Gen 138:109–133
42. Tsipouriari VA, Verykios XE (1999) Carbon and oxygen reaction pathways of CO 2 reforming
of methane over Ni/La 2 O 3 and Ni/Al 2 O 3 catalysts studied by isotopic tracing techniques. J
Catal 187:85–94
43. Zhang ZL, Verykios XE (1996) Mechanistic aspects of carbon dioxide reforming of methane
to synthesis gas over Ni catalysts. Catal Lett 38:175–179
44. Zhang YS, Zhang SJ, Gossage JL, Lou HH, Benson TJ (2014) Thermodynamic analyses of
Tr-reforming reactions to produce syngas. Energy Fuel 28:2717–2726
45. Garcia-Vargas JM, Valverde JL, de Lucas-Consuegra A, Gomez-Monedero B, Dorado F et al
(2013) Methane tri-reforming over a Ni/beta-SiC-based catalyst: Optimizing the feedstock
composition. Int J Hydrogen Energy 38:4524–4532
46. Song CS, Pan W (2004) Tri-reforming of methane: a novel concept for synthesis of industrially useful syngas with desired H 2 /CO ratios using flue gas of power plants without CO 2 preseparation. Abstr Pap Am Chem Soc 227:U1077–U1077
47. Noureldin MMB, Elbashir NO, Gabriel KJ, El-Halwagi MM (2015) A process integration
approach to the assessment of CO 2 fixation through dry reforming. ACS Sustain Chem Eng
3:625–636
48. Kumar R, Kumar K, Choudary NV, Pant KK (2019) Effect of support materials on the performance of Ni-based catalysts in tri-reforming of methane. Fuel Process Technol 186:40–52
49. Singha RK, Shukla A, Yadav A, Adak S, Iqbal Z et al (2016) Energy efficient methane trireforming for synthesis gas production over highly coke resistant nanocrystalline Ni-ZrO 2
catalyst. Appl Energy 178:110–125
S. Gupta et al.
