Novel molecular sieve silica (MSS) membranes: characterisation and permeation of single-step and two-step sol-gel membranes


Autoria(s): Diniz da Costa, J. C.; Lu, G. Q.; Rudolph, V.; Lin, Y. S.
Data(s)

31/03/2002

Resumo

High quality MSS membranes were synthesised by a single-step and two-step catalysed hydrolyses employing tetraethylorthosilicate (TEOS), absolute ethanol (EtOH), I M nitric acid (HNO3) and distilled water (H2O). The Si-29 NMR results showed that the two-step xerogels consistently had more contribution of silanol groups (Q(3) and Q(2)) than the single-step xerogel. According to the fractal theory, high contribution of Q(2) and Q(3) species are responsible for the formation of weakly branched systems leading to low pore volume of microporous dimension. The transport of diffusing gases in these membranes is shown to be activated as the permeance increased with temperature. Albeit the permeance of He for both single-step and two-step membranes are very similar, the two-step membranes permselectivity (ideal separation factor) for He/CO2 (69-319) and He/CH4 (585-958) are one to two orders of magnitude higher than the single-step membranes results of 2-7 and 69, respectively. The two-step membranes have high activation energy for He and H-2 permeance, in excess of 16 kJ mol(-1). The mobility energy for He permeance is three to six-fold higher for the two-step than the single-step membranes. As the mobility energy is higher for small pores than large pores and coupled with the permselectivity results, the two-step catalysed hydrolysis sol-gel process resulted in the formation of pore sizes in the region of 3 Angstrom while the single-step process tended to produce slightly larger pores. (C) 2002 Elsevier Science B.V. All rights reserved.

Identificador

http://espace.library.uq.edu.au/view/UQ:63076

Idioma(s)

eng

Publicador

Elsevier

Palavras-Chave #Engineering, Chemical #Polymer Science #Silica #Sol-gel #Silanol Groups #Weakly Branched Systems #Activation Energy #Mobility Energy #Microporous Ceramic Membranes #Gas Separation #Glass #Nmr #Transport #Si-29 #C1 #290603 Membrane and Separation Technologies #670799 Other
Tipo

Journal Article