34
3 Fossil Hydrocarbon Decarbonization and Nanotechnology
2. Muradov N (2002) Hydrogen from Fossil Fuels without Co 2 Emissions. In: Grégoire Padró
CE, Lau F (eds) Advances in hydrogen energy. Springer US, Boston, MA, pp 1–16. doi:https://
doi.org/10.1007/0-306-46922-7_1
3. Jabarullah NH, Othman R (2019) Steam reforming of shale gas over Al2O3 supported Ni-Cu
nano-catalysts. Pet Sci Technol 37(4):386–389
4. Wu C, Williams PT (2010) A novel nano-Ni/SiO2 catalyst for hydrogen production from
steam reforming of ethanol. Environ Sci Technol 44(15):5993–5998. https://doi.org/10.1021/
es100912w
5. Bej B, Pradhan NC, Neogi S (2013) Production of hydrogen by steam reforming of methane
over alumina supported nano-NiO/SiO2 catalyst. Catal Today 207:28–35. https://doi.org/10.
1016/j.cattod.2012.04.011
6. Keshavarz AR, Soleimani M (2016) Optimization of nano-sized Ni/MgAl2O4 catalyst
synthesis by the surfactant-assisted deposition precipitation method for steam pre-reforming
of natural gas. RSC Advances 6(66):61536–61543. https://doi.org/10.1039/C6RA07166J
7. Guo S, Wang J, Ding C, Duan Q, Ma Q, Zhang K, Liu P (2018) Confining Ni nanoparticles
in honeycomb-like silica for coking and sintering resistant partial oxidation of methane. Int J
Hydrogen Energy 43(13):6603–6613. https://doi.org/10.1016/j.ijhydene.2018.02.035
8. Marin-Flores O, Turba T, Ellefson C, Scudiero L, Breit J, Norton MG, Ha S (2010) Nanoparticle
Molybdenum Dioxide: A New Alternative Catalytic Material for Hydrogen Production via
Partial Oxidation of Jet-A Fuels. J Nanoelectron Optoelectron 5(2):110–114. https://doi.org/
10.1166/jno.2010.1074
9. Ding C, Wang J, Guo S, Ma Z, Li Y, Ma L, Zhang K (2019) Abundant hydrogen production over
well dispersed nickel nanoparticles confined in mesoporous metal oxides in partial oxidation
of methane. Int J Hydrogen Energy 44(57):30171–30184. https://doi.org/10.1016/j.ijhydene.
2019.09.202
10. Ma L, Ding C, Wang J, Li Y, Xue Y, Guo J, Zhang K, Liu P, Gao X (2019) Highly dispersed Pt
nanoparticles confined within hierarchical pores of silicalite-1 zeolite via crystal transformation
of supported Pt/S-1 catalyst for partial oxidation of methane to syngas. Int J Hydrogen Energy
44(39):21847–21857. https://doi.org/10.1016/j.ijhydene.2019.06.051
11. Roselin LS, Liao L-M, Chang F-W (2017) Gold Nanoparticles Supported on Fe2O3–MO x
(M = Al, Zr, Zn) Composite oxides for partial oxidation of methanol. J Nanosci Nanotechnol
17(4):2796–2803. https://doi.org/10.1166/jnn.2017.12725
12. Bkour Q, Zhao K, Scudiero L, Han DJ, Yoon CW, Marin-Flores OG, Norton MG, Ha S
(2017) Synthesis and performance of ceria-zirconia supported Ni-Mo nanoparticles for partial
oxidation of isooctane. Appl Catal B 212:97–105. https://doi.org/10.1016/j.apcatb.2017.04.055
13. Wang Y, Zhang Z, Zhu Y, Li Z, Vajtai R, Ci L, Ajayan PM (2008) Nanostructured VO2
Photocatalysts for Hydrogen Production. ACS Nano 2(7):1492–1496. https://doi.org/10.1021/
nn800223s
14. Lin C-H, Chao J-H, Liu C-H, Chang J-C, Wang F-C (2008) Effect of calcination temperature
on the structure of a Pt/TiO2 (B) nanofiber and its photocatalytic activity in generating H2.
Langmuir 24(17):9907–9915. https://doi.org/10.1021/la800572g
15. Cui W, Feng L, Xu C, Lü S, Qiu F (2004) Hydrogen production by photocatalytic decomposition
of methanol gas on Pt/TiO2 nano-film. Catal Commun 5(9):533–536. https://doi.org/10.1016/
j.catcom.2004.06.011
16. Li Q, Lu G (2007) Visible-light driven photocatalytic hydrogen generation on Eosin Ysensitized Pt-loaded nanotube Na2Ti2O4(OH)2. J Mol Catal A: Chem 266(1):75–79. https://
doi.org/10.1016/j.molcata.2006.10.047
17. Kuo H-L, Kuo C-Y, Liu C-H, Chao J-H, Lin C-H (2007) A highly active bi-crystalline photocatalyst consisting of TiO2 (B) nanotube and anatase particle for producing H2 gas from neat
ethanol. Catal Lett 113(1):7–12. https://doi.org/10.1007/s10562-006-9009-1
18. Li W, Wang H, Ren Z, Wang G, Bai J (2008) Co-production of hydrogen and multi-wall carbon
nanotubes from ethanol decomposition over Fe/Al2O3 catalysts. Appl Catal B 84(3):433–439.
https://doi.org/10.1016/j.apcatb.2008.04.026
3 Fossil Hydrocarbon Decarbonization and Nanotechnology
2. Muradov N (2002) Hydrogen from Fossil Fuels without Co 2 Emissions. In: Grégoire Padró
CE, Lau F (eds) Advances in hydrogen energy. Springer US, Boston, MA, pp 1–16. doi:https://
doi.org/10.1007/0-306-46922-7_1
3. Jabarullah NH, Othman R (2019) Steam reforming of shale gas over Al2O3 supported Ni-Cu
nano-catalysts. Pet Sci Technol 37(4):386–389
4. Wu C, Williams PT (2010) A novel nano-Ni/SiO2 catalyst for hydrogen production from
steam reforming of ethanol. Environ Sci Technol 44(15):5993–5998. https://doi.org/10.1021/
es100912w
5. Bej B, Pradhan NC, Neogi S (2013) Production of hydrogen by steam reforming of methane
over alumina supported nano-NiO/SiO2 catalyst. Catal Today 207:28–35. https://doi.org/10.
1016/j.cattod.2012.04.011
6. Keshavarz AR, Soleimani M (2016) Optimization of nano-sized Ni/MgAl2O4 catalyst
synthesis by the surfactant-assisted deposition precipitation method for steam pre-reforming
of natural gas. RSC Advances 6(66):61536–61543. https://doi.org/10.1039/C6RA07166J
7. Guo S, Wang J, Ding C, Duan Q, Ma Q, Zhang K, Liu P (2018) Confining Ni nanoparticles
in honeycomb-like silica for coking and sintering resistant partial oxidation of methane. Int J
Hydrogen Energy 43(13):6603–6613. https://doi.org/10.1016/j.ijhydene.2018.02.035
8. Marin-Flores O, Turba T, Ellefson C, Scudiero L, Breit J, Norton MG, Ha S (2010) Nanoparticle
Molybdenum Dioxide: A New Alternative Catalytic Material for Hydrogen Production via
Partial Oxidation of Jet-A Fuels. J Nanoelectron Optoelectron 5(2):110–114. https://doi.org/
10.1166/jno.2010.1074
9. Ding C, Wang J, Guo S, Ma Z, Li Y, Ma L, Zhang K (2019) Abundant hydrogen production over
well dispersed nickel nanoparticles confined in mesoporous metal oxides in partial oxidation
of methane. Int J Hydrogen Energy 44(57):30171–30184. https://doi.org/10.1016/j.ijhydene.
2019.09.202
10. Ma L, Ding C, Wang J, Li Y, Xue Y, Guo J, Zhang K, Liu P, Gao X (2019) Highly dispersed Pt
nanoparticles confined within hierarchical pores of silicalite-1 zeolite via crystal transformation
of supported Pt/S-1 catalyst for partial oxidation of methane to syngas. Int J Hydrogen Energy
44(39):21847–21857. https://doi.org/10.1016/j.ijhydene.2019.06.051
11. Roselin LS, Liao L-M, Chang F-W (2017) Gold Nanoparticles Supported on Fe2O3–MO x
(M = Al, Zr, Zn) Composite oxides for partial oxidation of methanol. J Nanosci Nanotechnol
17(4):2796–2803. https://doi.org/10.1166/jnn.2017.12725
12. Bkour Q, Zhao K, Scudiero L, Han DJ, Yoon CW, Marin-Flores OG, Norton MG, Ha S
(2017) Synthesis and performance of ceria-zirconia supported Ni-Mo nanoparticles for partial
oxidation of isooctane. Appl Catal B 212:97–105. https://doi.org/10.1016/j.apcatb.2017.04.055
13. Wang Y, Zhang Z, Zhu Y, Li Z, Vajtai R, Ci L, Ajayan PM (2008) Nanostructured VO2
Photocatalysts for Hydrogen Production. ACS Nano 2(7):1492–1496. https://doi.org/10.1021/
nn800223s
14. Lin C-H, Chao J-H, Liu C-H, Chang J-C, Wang F-C (2008) Effect of calcination temperature
on the structure of a Pt/TiO2 (B) nanofiber and its photocatalytic activity in generating H2.
Langmuir 24(17):9907–9915. https://doi.org/10.1021/la800572g
15. Cui W, Feng L, Xu C, Lü S, Qiu F (2004) Hydrogen production by photocatalytic decomposition
of methanol gas on Pt/TiO2 nano-film. Catal Commun 5(9):533–536. https://doi.org/10.1016/
j.catcom.2004.06.011
16. Li Q, Lu G (2007) Visible-light driven photocatalytic hydrogen generation on Eosin Ysensitized Pt-loaded nanotube Na2Ti2O4(OH)2. J Mol Catal A: Chem 266(1):75–79. https://
doi.org/10.1016/j.molcata.2006.10.047
17. Kuo H-L, Kuo C-Y, Liu C-H, Chao J-H, Lin C-H (2007) A highly active bi-crystalline photocatalyst consisting of TiO2 (B) nanotube and anatase particle for producing H2 gas from neat
ethanol. Catal Lett 113(1):7–12. https://doi.org/10.1007/s10562-006-9009-1
18. Li W, Wang H, Ren Z, Wang G, Bai J (2008) Co-production of hydrogen and multi-wall carbon
nanotubes from ethanol decomposition over Fe/Al2O3 catalysts. Appl Catal B 84(3):433–439.
https://doi.org/10.1016/j.apcatb.2008.04.026
