Energetics of ammonia sorption in alkali metal exchanged analogues of linde type X zeolites

Citation
Ud. Joshi et al., Energetics of ammonia sorption in alkali metal exchanged analogues of linde type X zeolites, J PHYS CH B, 105(43), 2001, pp. 10637-10647
Citations number
36
Categorie Soggetti
Physical Chemistry/Chemical Physics
Journal title
JOURNAL OF PHYSICAL CHEMISTRY B
ISSN journal
15206106 → ACNP
Volume
105
Issue
43
Year of publication
2001
Pages
10637 - 10647
Database
ISI
SICI code
1520-6106(20011101)105:43<10637:EOASIA>2.0.ZU;2-O
Abstract
The parent zeolite NaX was prepared from hydrogel system 3.6 Na2O:3 SiO2:Al 2O3:144 H2O at 368 K for 8 h under static condition. Postsynthesis modifica tion was carried out using the conventional ion-exchange technique to obtai n different ion-exchanged forms. The parent as well as exchanged samples we re characterized by chemical analysis, IR, SEM, powder XRD, and low tempera ture nitrogen sorption. The ammonia sorption isotherms in parent NaX (Si/Al = 1.15) and its modified forms with a nearly equal degree of exchange by K +, Rb+, and Cs' cations have been measured in the temperature range of 303- 453 K up to 500 Torr. The equilibrium sorption uptake at 50 Torr and especi ally at temperatures above 363 K was found to follow the sequence NaX > NaK (53)X > NaRb(53)X > NaCs(58)X. The analysis of the ammonia sorption data in terms of different isotherm equations revealed satisfactory representation by Langmuir, Dubinin, BET, and Sips equations and statistical models of La ngmuir and Volmer. However, the Freundlich equation failed to represent amm onium sorption data at higher pressures. All of the parent and exchanged sa mples were compared in terms of chemical potential of ammonia sorption. Iso steric heat of ammonia sorption data revealed the higher heterogeneity of s orbent surface of Cs+-exchanged samples than those of other analogues. The variations in the charge density of the extraframework cations were found t o influence the ammonia sorption energetics via alteration in Lewis acid-ba se character.