US 3574402A
· Davis, II et al.
· 1971
[cited by applicant]
US 3724898A
· Jacoby
· 1973
[cited by applicant]
US 3807181A
· Kuhne
· 1974
[cited by applicant]
US 4949749A
· Fowler
· 1990
[cited by examiner]
US 5957539A
· Durup
· 1999
[cited by examiner]
US 9718618B2
· Oates
· 2017
[cited by applicant]
US 20090309408A1
· Bishop
· 2009
[cited by examiner]
US 20110033238A1
· Riese
· 2011
[cited by applicant]
US 20110175428A1
· Haugen
· 2011
[cited by applicant]
US 20110305515A1
· Drnevich
· 2011
[cited by examiner]
US 20140262739A1
· Fong
· 2014
[cited by examiner]
US 20160089705A1
· Oates
· 2016
[cited by examiner]
US 20160341023A1
· Jacobson
· 2016
[cited by examiner]
US 20160361741A1
· Kondo
· 2016
[cited by examiner]
CA 2844919A1
· 2012
[cited by applicant]
JP 2010201330
· 2010
[cited by examiner]
JP 2010201330A
· 2010
[cited by applicant]
Patel et al., High capacity carbon dioxide adsorption by inexpensive covalent organic Polymers, J. Mater. Chem., 2012, 22, 8431. <https://doi.org/10.1039/C2JM30761H>.
[cited by applicant]
Patel et al., Highly Stable Nanoporous Sulfur-Bridged Covalent Organic Polymers for Carbon Dioxide Removal, Adv. Funct. Mater. 2013, 23, 2270-2276. <https://doi.org/10.1002/adfm.201202442>.
[cited by applicant]
Ullah et al., Investigation of Ester- and Amide-Linker-Based Porous Organic Polymers for Carbon Dioxide Capture and Separation at Wide Temperatures and Pressures, ACS Appl. Mater. Interfaces 2016, 8, 20772?20785. <https…
[cited by applicant]
Deniz et al., A combined computational and experimental study of high pressure and supercritical CO2 adsorption on Basolite MOFs, Microporous and Mesoporous Materials 175 (2013) 34-42. <http://dx.doi.org/10.1016/j.micro…
[cited by applicant]
Patel et al., Carbon Dioxide Capture Adsorbents: Chemistry and Methods, ChemSusChem, 2016, <https://doi.org/10.1002/cssc.201601545>.
[cited by applicant]
Caglayan, D.G., Weber, N., Heinrichs, H.U., Linßen, J., Robinius, M., Kukla, P.A. and Stolten, D., 2020. Technical potential of salt caverns for hydrogen storage in Europe. International Journal of Hydrogen Energy, 45(1…
[cited by applicant]
Habibi, R., 2019. An investigation into design concepts, design methods and stability criteria of salt caverns. Oil & Gas Science and Technology-Revue d'IFP Energies nouvelles, 74, p. 14.
[cited by applicant]
Islamoglu et al., 2018. Benchmark Study of Hydrogen Storage in Metal? Organic Frameworks under Temperature and Pressure Swing Conditions, ACS Energy Lett., 3, 748-754.
[cited by applicant]
Kapelewski et al., 2018. Record High Hydrogen Storage Capacity in the Metal? Organic Framework Ni2(m?dobdc) at Near-Ambient Temperatures, Chem. Mater., 30, 8179-8189.
[cited by applicant]
Laban, M.P., 2020. Hydrogen Storage in Salt Caverns: Chemical modelling and analysis of large-scale hydrogen storage in underground salt caverns.
[cited by applicant]
Marco-Lozar et al., 2002. Activated carbon monoliths for methane storage: influence of binder, Carbon, 40, 2817-2825.
[cited by applicant]
Mohan et al., 2018. Hydrogen storage in carbon materials—A review, Energy storage, e35. 1-26.
[cited by applicant]
Singh, V.K., 2010. Geological storage: underground gas storage.
[cited by applicant]
Tarkowski, R. and Czapowski, G., 2018. Salt domes in Poland-potential sites for hydrogen storage in caverns. International Journal of Hydrogen Energy, 43(46), pp. 21414-21427.
[cited by applicant]
Warren, J.K., 2006. Evaporites: sediments, resources and hydrocarbons. Springer Science & Business Media.
[cited by applicant]
Warren, J.K., 2017. Salt usually seals, but sometimes leaks: Implications for mine and cavern stabilities in the short and long term. Earth-science reviews, 165, pp. 302-341.
[cited by applicant]
Zivar, D., Kumar, S. and Foroozesh, J., 2020. Underground hydrogen storage: A comprehensive review. International Journal of Hydrogen Energy.
[cited by applicant]
Prosniewski et al., Controlled charge and discharge of a 40-L monolithic adsorbed natural gas tank, Adsorption (2018) 24:541-550, <https://doi.org/10.1007/s10450-018-9961-2>.
[cited by applicant]
Marco-Lozar et al., Gas storage scale-up at room temperature on high density carbon materials, C A R B O N 76 (2014) 123-132, <http://dx.doi.org/10.1016/j.carbon.2014.04.058>.
[cited by applicant]
Rozyyev et al., High-capacity methane storage in flexible alkane-linked porous aromatic network polymers, Nature Energy, 4, 604, 2019. <https://doi.org/10.1038/s41560-019-0427-x>.
[cited by applicant]
Mason et al., Methane storage in flexible metal-organic frameworks with intrinsic thermal management, Nature, 527, 357-361, 2015. <https://doi.org/10.1038/nature15732>.
[cited by applicant]
Tedds, Steven Paul “Microporous Materials for Hydrogen Storage”; A thesis, Dec. 2010.
[cited by applicant]
Blankenship, et al. “Oxygen-rich microporous carbons with exceptional hydrogen storage capacity”; Nature Communications, Oct. 29, 2021.
[cited by applicant]
Andersson, et al. “Large-scale Storage of Hydrogen”; International Journal of Hydrogen Energy, May 3, 2019.
[cited by applicant]
Ramirez-Vidal, et al. “A Step Forward in Understanding the Hydrogen Absorption and Compression on Activated Carbons”; ACS Applied Materials & Interfaces, Mar. 4, 2021.
[cited by applicant]
Rozzi, et al. “Dynamid modeling and thermal management of a Power-to-Power system with hydrogen storage in microporous absorbent materials”; Journal of Energy Storage, Jul. 31, 2021.
[cited by applicant]
Sdanghi, et al. “Towards Non-Mechanical Hybrid Hyrdogen Compression for Decentralized Hydrogen Facilities”; Energies, Jun. 17, 2020.
[cited by applicant]
Non-Final Office Action issued by the U.S. Patent Office for corresponding U.S. Appl. No. 18/185,667, mailed Nov. 27, 2024 (7 pages).
[cited by applicant]
Office Action issued by the Saudi Arabian Patent Office for corresponding Saudi Arabian patent application No. 123446812, mailed Mar. 23, 2025 (9 pages).
[cited by applicant]