7. Baerlocher CH, McCusker LB. Database of zeolite structures. http://www.iza-structure.org/
databases/. Accessed 29 Nov 2019
8. Cundy CS, Cox PA (2003) The hydrothermal synthesis of zeolites: history and development
from the earliest days to the present time. Chem Rev 103:663–702
9. Dusselier M, Davis ME (2018) Small-pore zeolites: synthesis and catalysis. Chem Rev
118:5265–5329
10. Smith A, Klosek J (2001) A review of air separation technologies and their integration with
energy conversion processes. Fuel Process Technol 70:115–134
11. Stock N, Biswas S (2011) Synthesis of metal-organic frameworks (MOFs): routes to various
MOF topologies, morphologies, and composites. Chem Rev 112:933–969
12. Furukawa H, Cordova KE, O’Keefe M, Yaghi OM (2013) The chemistry and applications of
metal-organic frameworks. Science 341:1230444
13. Titirici MM, White RJ, Brun N, Budarin VL, Su DS, del Monte F, Clark JH, MacLachlan MJ
(2015) Sustainable carbon materials. Chem Soc Rev 44:250–290
14. Nor NM, Lau LC, Lee KT, Abdul RM (2013) Synthesis of activated carbon from lignocellulosic biomass and its applications in air pollution control – a review. J Environ Chem Eng
1:658–666
15. Shang J, Li G, Singh R, Gu Q, Narin KM, Bastow TK, Medhekar N, Doherty CM, Hill AJ, Liu
JZ, Webley PA (2012) Discriminative separation of gases by a “molecular trapdoor” mechanism in chabazite zeolites. J Am Chem Soc 134:19246–19253
16. Hasan MMF, First EL, Floudas CA (2013) Cost-effective CO 2 capture based on in silico
screening of zeolites and process optimization. Phys Chem Chem Phys 15:17601–17618
17. Younas M, Sohail M, Leong LK, Bashir MJ, Sumathi S (2016) Feasibility of CO 2 adsorption
by solid adsorbents: a review on low temperature systems. Int J Environ Sci Technol
13:1839–1860
18. Trickett CA, Helal A, Al-Maythalony BA, Yamani ZH, Cordova KE, Yaghi OM (2017) The
chemistry of metal–organic frameworks for CO 2 capture, regeneration and conversion. Nat
Rev Mater 2:17045
19. Belmabkhout Y, Guillerm V, Eddaoudi M (2016) Low concentration CO 2 capture using
physical adsorbents: are metal-organic frameworks becoming the new benchmark materials?
Chem Eng J 296:386–397
20. Ben-Mansour R, Habib MA, Bamidele OE, Basha M, Qasem NAA, Peedikakkal A, Laoui T,
Ali M (2016) Carbon capture by physical adsorption: materials, experimental investigations
and numerical modeling and simulations - a review. Appl Energy 161:225–255
21. Liu Q, Mace A, Bacsik Z, Sun J, Laaksonen A, Hedin N (2010) NaKA sorbents with high
CO 2 -over-N 2 selectivity and high capacity to adsorb CO 2 . Chem Commun 46:4502–4504
22. Bacsik Z, Cheung O, Vasilev P, Hedin N (2016) Selective separation of CO 2 and CH 4 for
biogas upgrading on zeolite NaKA and SAPO-56. Appl Energy 162:613–621
23. Palomino M, Corma A, Rey F, Valencia S (2009) New insights on CO 2 Àmethane separation
using LTA zeolites with different Si/Al ratios and a first comparison with MOFs. Langmuir
26:1910–1917
24. Cheung O, Bacsik Z, Krokidas P, Mace A, Laaksonen A, Hedin N (2014) K
+ exchanged
zeolite ZK-4 as a highly selective sorbent for CO 2 . Langmuir 30:9682–9690
25. Cheung O, Wardecki D, Bacsik Z, Vasiliev P, McCusker LB, Hedin N (2016) Highly selective
uptake of carbon dioxide on the zeolite |Na10.2KCs0.8|-LTA – a possible sorbent for biogas
upgrading. Phys Chem Chem Phys 18:16080–16083
26. Bae TH, Hudson MR, Mason JA, Queen WL, Dutton JJ, Sumida K, Micklash KJ, Kaye SS,
Brown CM, Long JR (2013) Evaluation of cation-exchanged zeolite adsorbents for
postcombustion carbon dioxide capture. Energy Environ Sci 6:128–138
27. Ridha FN, Webley PA (2009) Anomalous Henry's law behavior of nitrogen and carbon
dioxide adsorption on alkali-exchanged chabazite zeolites. Sep Purif Technol 67:336–343
28. Zhang J, Singh R, Webley PA (2008) Alkali and alkaline-earth cation exchanged chabazite
zeolites for adsorption based CO 2 capture. Microporous Mesoporous Mater 111:478–487
Small Gas Adsorption and Separation in Small-Pore Zeolites
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