References
81
References
1. Han SW, Cha G-B, Park Y, Hong SC (2017) Hydrogen physisorption based on the dissociative
hydrogen chemisorption at the sulphur vacancy of MoS 2 surface. Sci Rep 7(1):7152. https://
doi.org/10.1038/s41598-017-07178-9
2. Basile A, Iulianelli A (2014) Advances in hydrogen production, storage and distribution.
Elsevier
3. Klontzas E, Tylianakis E, Froudakis GE (2008) Hydrogen storage in 3D covalent organic
frameworks. A multiscale theoretical investigation. The Journal of Physical Chemistry C 112
(24):9095–9098
4. Pupysheva OV, Farajian AA, Yakobson BI (2008) Fullerene Nanocage Capacity for Hydrogen
Storage. Nano Lett 8(3):767–774. https://doi.org/10.1021/nl071436g
5. Sun G, Tangpanitanon J, Shen H, Wen B, Xue J, Wang E, Xu L (2014) Physisorption of
molecular hydrogen on carbon nanotube with vacant defects. J Chem Phys 140(20):204712
6. Kajiura H, Tsutsui S, Kadono K, Kakuta M, Ata M, Murakami Y (2003) Hydrogen storage
capacity of commercially available carbon materials at room temperature. Appl Phys Lett
82(7):1105–1107
7. Chahine R, Bose TK (1994) Low-pressure adsorption storage of hydrogen. Int J Hydrogen
Energy 19(2):161–164
8. Lee J, Farha OK, Roberts J, Scheidt KA, Nguyen ST, Hupp JT (2009) Metal–organic framework
materials as catalysts. Chem Soc Rev 38(5):1450–1459
9. Férey G, Latroche M, Serre C, Millange F, Loiseau T, Percheron-Guégan A (2003) Hydrogen
adsorption in the nanoporous metal-benzenedicarboxylate M(OH)(O2C–C6H4–CO2) (M =
Al3+, Cr3+), MIL-53. Chem Commun 24:2976–2977. https://doi.org/10.1039/B308903G
10. Isaacson CW, Kleber M, Field JA (2009) Quantitative analysis of fullerene nanomaterials in
environmental systems: a critical review. Environ Sci Technol 43(17):6463–6474. https://doi.
org/10.1021/es900692e
11. Wang Z, Yao M, Pan S, Jin M, Liu B, Zhang H (2007) A barrierless process from physisorption to chemisorption of H2 molecules on light-element-doped fullerenes. J Phys Chem C
111(11):4473–4476
12. Mert H, Deniz CU, Baykasoglu C (2020) Monte Carlo simulations of hydrogen adsorption
in fullerene pillared graphene nanocomposites. Mol Simul 46(8):650–659. https://doi.org/10.
1080/08927022.2020.1758696
13. Sathe RY, Bae H, Lee H, Dhilip Kumar TJ (2020) Hydrogen storage capacity of low-lying
isomer of C24 functionalized with Ti. Int J Hydrogen Energy 45(16):9936–9945. https://doi.
org/10.1016/j.ijhydene.2020.02.016
14. Ozturk Z, Baykasoglu C, Kirca M (2016) Sandwiched graphene-fullerene composite: A novel
3-D nanostructured material for hydrogen storage. Int J Hydrogen Energy 41(15):6403–6411.
https://doi.org/10.1016/j.ijhydene.2016.03.042
15. Rather Su (2020) Preparation, characterization and hydrogen storage studies of carbon
nanotubes and their composites: a review. Int J Hydrogen Energy 45(7):4653–4672. https://
doi.org/10.1016/j.ijhydene.2019.12.055
16. Cabria I, López MJ, Alonso JA (2006) Density functional calculations of hydrogen adsorption
on boron nanotubes and boron sheets. Nanotechnology 17(3):778
17. Dillon AC, Jones KM, Bekkedahl TA, Kiang CH, Bethune DS, Heben MJ (1997) Storage of
hydrogen in single-walled carbon nanotubes. Nature 386(6623):377–379
18. Ye Y, Ahn CC, Witham C, Fultz B, Liu J, Rinzler AG, Colbert D, Smith KA, Smalley RE (1999)
Hydrogen adsorption and cohesive energy of single-walled carbon nanotubes. Appl Phys Lett
74(16):2307–2309
19. Chambers A, Park C, Baker RTK, Rodriguez NM (1998) Hydrogen storage in graphite
nanofibers. J Phys Chem B 102(22):4253–4256
20. Kosasih EA, Kurniawan B, Zulkarnain IA (2016) Optimization of hydrogen storage capacity
by physical adsorption on open-ended single-walled carbon nanotube as diameter function. Int
J Technol 7(2):264–273
81
References
1. Han SW, Cha G-B, Park Y, Hong SC (2017) Hydrogen physisorption based on the dissociative
hydrogen chemisorption at the sulphur vacancy of MoS 2 surface. Sci Rep 7(1):7152. https://
doi.org/10.1038/s41598-017-07178-9
2. Basile A, Iulianelli A (2014) Advances in hydrogen production, storage and distribution.
Elsevier
3. Klontzas E, Tylianakis E, Froudakis GE (2008) Hydrogen storage in 3D covalent organic
frameworks. A multiscale theoretical investigation. The Journal of Physical Chemistry C 112
(24):9095–9098
4. Pupysheva OV, Farajian AA, Yakobson BI (2008) Fullerene Nanocage Capacity for Hydrogen
Storage. Nano Lett 8(3):767–774. https://doi.org/10.1021/nl071436g
5. Sun G, Tangpanitanon J, Shen H, Wen B, Xue J, Wang E, Xu L (2014) Physisorption of
molecular hydrogen on carbon nanotube with vacant defects. J Chem Phys 140(20):204712
6. Kajiura H, Tsutsui S, Kadono K, Kakuta M, Ata M, Murakami Y (2003) Hydrogen storage
capacity of commercially available carbon materials at room temperature. Appl Phys Lett
82(7):1105–1107
7. Chahine R, Bose TK (1994) Low-pressure adsorption storage of hydrogen. Int J Hydrogen
Energy 19(2):161–164
8. Lee J, Farha OK, Roberts J, Scheidt KA, Nguyen ST, Hupp JT (2009) Metal–organic framework
materials as catalysts. Chem Soc Rev 38(5):1450–1459
9. Férey G, Latroche M, Serre C, Millange F, Loiseau T, Percheron-Guégan A (2003) Hydrogen
adsorption in the nanoporous metal-benzenedicarboxylate M(OH)(O2C–C6H4–CO2) (M =
Al3+, Cr3+), MIL-53. Chem Commun 24:2976–2977. https://doi.org/10.1039/B308903G
10. Isaacson CW, Kleber M, Field JA (2009) Quantitative analysis of fullerene nanomaterials in
environmental systems: a critical review. Environ Sci Technol 43(17):6463–6474. https://doi.
org/10.1021/es900692e
11. Wang Z, Yao M, Pan S, Jin M, Liu B, Zhang H (2007) A barrierless process from physisorption to chemisorption of H2 molecules on light-element-doped fullerenes. J Phys Chem C
111(11):4473–4476
12. Mert H, Deniz CU, Baykasoglu C (2020) Monte Carlo simulations of hydrogen adsorption
in fullerene pillared graphene nanocomposites. Mol Simul 46(8):650–659. https://doi.org/10.
1080/08927022.2020.1758696
13. Sathe RY, Bae H, Lee H, Dhilip Kumar TJ (2020) Hydrogen storage capacity of low-lying
isomer of C24 functionalized with Ti. Int J Hydrogen Energy 45(16):9936–9945. https://doi.
org/10.1016/j.ijhydene.2020.02.016
14. Ozturk Z, Baykasoglu C, Kirca M (2016) Sandwiched graphene-fullerene composite: A novel
3-D nanostructured material for hydrogen storage. Int J Hydrogen Energy 41(15):6403–6411.
https://doi.org/10.1016/j.ijhydene.2016.03.042
15. Rather Su (2020) Preparation, characterization and hydrogen storage studies of carbon
nanotubes and their composites: a review. Int J Hydrogen Energy 45(7):4653–4672. https://
doi.org/10.1016/j.ijhydene.2019.12.055
16. Cabria I, López MJ, Alonso JA (2006) Density functional calculations of hydrogen adsorption
on boron nanotubes and boron sheets. Nanotechnology 17(3):778
17. Dillon AC, Jones KM, Bekkedahl TA, Kiang CH, Bethune DS, Heben MJ (1997) Storage of
hydrogen in single-walled carbon nanotubes. Nature 386(6623):377–379
18. Ye Y, Ahn CC, Witham C, Fultz B, Liu J, Rinzler AG, Colbert D, Smith KA, Smalley RE (1999)
Hydrogen adsorption and cohesive energy of single-walled carbon nanotubes. Appl Phys Lett
74(16):2307–2309
19. Chambers A, Park C, Baker RTK, Rodriguez NM (1998) Hydrogen storage in graphite
nanofibers. J Phys Chem B 102(22):4253–4256
20. Kosasih EA, Kurniawan B, Zulkarnain IA (2016) Optimization of hydrogen storage capacity
by physical adsorption on open-ended single-walled carbon nanotube as diameter function. Int
J Technol 7(2):264–273
