The synthesis and separation properties of a mesoporous silica supported liquid membrane (SLM) were studied. The membranes consisted of a silica layer, from dip-coated colloidal silica, on an β£-alumina support, modified with dichlorodimethyl silane (DCDMS) to add surface methyl groups to the silica
Development of a new porous metal support of metallic dense membrane for hydrogen separation
β Scribed by Shin-Kun Ryi; Jong-Soo Park; Sung-Hyun Kim; Sung-Ho Cho; Joo-Seok Park; Dong-Won Kim
- Publisher
- Elsevier Science
- Year
- 2006
- Tongue
- English
- Weight
- 996 KB
- Volume
- 279
- Category
- Article
- ISSN
- 0376-7388
No coin nor oath required. For personal study only.
β¦ Synopsis
Porous nickel support was successfully made by uniaxial pressing of nickel powder for gases separation or metal support of Pd and/or Pdalloy dense membrane. Since the used nickel powder was prepared by pulsed wire evaporation (PWE) method, it has a good thermal stability. Furthermore, a broad particle size distribution from 20 to 5000 nm cleared out the powder mixing step in the procedures of fabrication of porous nickel support. From the pore characterization and SEM analysis, it was clarified that the fabricated porous nickel support had so small uniform pore size of 33 nm and very smooth surface so that it can be offered as new material for the substrate of palladium and/or palladium-based alloy membrane. As a result of single gas permeation test using H 2 and N 2 , permeance was constant with increasing transmembrane pressure difference and the selectivity was around 3.7, which indicated that the gas permeation was contributed by Knudsen diffusion. Since it has thermal resistance up to 650 β’ C, sputtering followed by cupper reflow could be applied to the formation of Pd-Cu-Ni ternary film on it. Furthermore, it showed the defect-free dense membrane characteristic.
π SIMILAR VOLUMES
A palladium membrane has been prepared by electroless plating on the surface of a Porous Stainless Steel disk. The disk surface was modified with WO 3 to prevent metal penetration into palladium layer and hence a membrane with nano-sized pores could be obtained. The mean thickness of the resulting P
A new metal-organic framework [Fe 3 O(OOC-C 6 H 4 -COO) 3 (H 2 O) 3 ]Cl$(H 2 O) x was synthesized with a specific surface area of 2823 m 2 /g and a lattice parameter of 88.61 A Λ. Isostructural with MIL-101, this compound exhibits similar hydrogen adsorption properties, with maximum adsorption capac