Pore Size Control of a Molecular Sieve Silica Membrane Prepared by a Counter Diffusion CVD Method

被引:29
作者
Nomura, Mikihiro [1 ]
Nagayo, Toshihiro [1 ]
Monma, Keita [1 ]
机构
[1] Shibaura Inst Technol, Dept Appl Chem, Koto Ku, Tokyo 1358548, Japan
关键词
Silica Membrane; Counter Diffusion CVD; Pore Size Control; Silica Precursors;
D O I
10.1252/jcej.07WE065
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
A molecular sieve silica membrane was successfully prepared by using a counter diffusion chemical vapor deposition method. Effects of silica precursors on permeation properties through the silica membranes were investigated. Five types of silica alkoxides (tetramethyorthosilicate (TMOS), methyltrimethoxysilane (MTMOS), trimethylmethoxysilane (TMMOS), propyltrimethoxysilane (PrTMOS) and phenyltrimethoxysilane (PhTMOS)) were employed for the silica precursors. H-2, N-2 and SF6 permeances were measured through the silica membranes at 300 degrees C. H-2 permselective silica membranes were obtained from the smaller silica precursors such as TMOS, MTMOS or TMMOS. H-2/N-2 permecnces ratios were over 200, while N-2/SF6 permeances ratios were around 1. According to the kinetic diameters of H-2 (0.26 nm), N-2 (0.36 nm) and SF6 (0.55 nm), pore sizes of the membranes were about 0.3 nm. N-2 permselective silica membrane was obtained from the larger silica precursors such as PrTMOS or PhTMOS. N-2/SF6 permeances ratios through the membranes prepared by PrTMOS or PhTMOS were 30 and 32, respectively. Those values are much larger than that of Knudsen diffusion (2.3). H-2/N-2 permeances ratios through the membranes were about 40 showing that the maximum pore sizes are around 0.5 nm. These results show that the pore size of silica membranes can be controlled by changing the silica precursors. The PhTMOS membrane was confirmed as a silica membrane without carbon remaining by the cross-sectional XPS measurements.
引用
收藏
页码:1235 / 1241
页数:7
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