29. Ridha FN, Yang Y, Webley PA (2009) Adsorption characteristics of a fully exchanged
potassium chabazite zeolite prepared from decomposition of zeolite Y. Microporous
Mesoporous Mater 117:497–507
30. Lozinska M, Mangano E, Mowat JPS, Shepherd AM, Howe RF, Thompson SP, Parker JE,
Brandani S, Wright PA (2012) Understanding carbon dioxide adsorption on univalent cation
forms of the flexible zeolite rho at conditions relevant to carbon capture from flue gases. J Am
Chem Soc 134:17628–17642
31. Shang J, Li G, Singh R, Xiao P, Liu JZ, Webley PA (2013) Determination of composition
range for “molecular trapdoor” effect in chabazite zeolite. J Phys Chem C 117:12841–12847
32. Pham TD, Liu Q, Lobo RF (2012) Carbon dioxide and nitrogen adsorption on cationexchanged SSZ-13 zeolites. Langmuir 29:832–839
33. Hudson MR, Queen WL, Mason JA, Fickel DW, Lobo RF, Brown CM (2012) Unconventional, highly selective CO 2 adsorption in zeolite SSZ-13. J Am Chem Soc 134:1970–1973
34. Pirngruber GD, Raybaud P, Belmabkout Y, Cejka J, Zukal A (2010) The role of the extraframework cations in the adsorption of CO 2 on faujasite Y. Phys Chem Chem Phys
12:13534–13546
35. Martra G, Coluccia S, Davit P, Gianotti E, Marchese L, Tsuji H, Hattori H (1999) Acidic and
basic sites in NaX and NaY faujasites investigated by NH 3 , CO 2 and CO molecular probes.
Res Chem Intermed 25:77–93
36. Dunne JA, Rao M, Sircar S, Gorte RJ, Myers AL (1996) Calorimetric heats of adsorption and
adsorption isotherms. 2. O 2 , N 2 , Ar, CO 2 , CH 4 , C 2 H 6 , and SF 6 on NaX, H-ZSM-5, and
Na-ZSM-5 zeolites. Langmuir 12:5896–5904
37. Liu Q, Pham T, Porosoff MD, Lobo RF (2012) ZK-5: a CO 2 selective zeolite with high
working capacity at ambient temperature and pressure. ChemSusChem 5:2237–2242
38. Remy T, Peter SA, Van Tendeloo L, Van der Perre S, Lorgouilloux Y, Kirschhock CEA,
Baron GV, Denayer JFM (2013) Adsorption and separation of CO 2 on KFI zeolites: effect of
cation type and Si/Al ratio on equilibrium and kinetic properties. Langmuir 29:4998–5012
39. Guo P, Shin J, Greenaway AG, Min JG, Su J, Choi HJ, Liu L, Cox PA, Hong SB, Wright PA,
Zou X (2015) A zeolite family with expanding structural complexity and embedded
isoreticular structures. Nature 524:74–78
40. Shin J, Xu H, Seo S, Guo P, Min JG, Cho J, Wright PA, Zou X, Hong SB (2016) Targeted
synthesis of two super-complex zeolites with embedded isoreticular structures. Angew Chem
Int Ed 55:4928–4932
41. Min JG, Choi HJ, Shin J, Hong SB (2017) Crystallization mechanism of a family of embedded
isoreticular zeolites. J Phys Chem C 121:16342–16350
42. Cho J, Choi HJ, Guo P, Shin J, Zou X, Hong SB (2017) Embedded isoreticular zeolites:
concept and beyond. Chem Eur J 23:15922–15929
43. Dong J, Wang X, Xu H, Zhao Q, Li J (2007) Hydrogen storage in several microporous
zeolites. Int J Hydrog Energy 32:4998–5004
44. Gordon EK, Samson S, Kamb WB (1966) Crystal structure of the zeolite paulingite. Science
154:1004–1007
45. Lee H, Shin J, Choi W, Choi HJ, Yang T, Zou X, Hong SB (2018) PST-29: a missing member
of the RHO family of embedded isoreticular zeolites. Chem Mater 30:6619–6623
46. Min JG, Kemp KC, Hong SB (2017) Zeolites ZSM-25 and PST-20: selective carbon dioxide
adsorbents at high pressures. J Phys Chem C 121:3404–3409
47. Min JG, Kemp KC, Lee HJ, Hong SB (2018) CO 2 adsorption in the RHO family of embedded
isoreticular zeolites. J Phys Chem C 122:28815–28824
48. Palomino M, Corma A, Jordá JL, Rey F, Valencia S (2012) Zeolite rho: a highly selective
adsorbent for CO 2 /CH 4 separation induced by a structural phase modification. Chem Commun
48:215–217
49. Zukal A, Shamzhy M, Kubů M, Čejka J (2018) The effect of pore size dimensions in
isoreticular zeolites on carbon dioxide adsorption heats. J CO2 Util 24:157–163
26
K. C. Kemp et al.
Précédent

- 34/233

Suivant