of the carbon-oxygen bond (17,18), the change in the The Nb 2 O 5 /cellulose composite was prepared by reacting acrystallinity degree was investigated for the polymer fiber cellulose with NbCl 5-n (OC 2 H 5 ) n , in nonaqueous solvent, under niupon chemical treatment with the Nb(V) precursor reagent
Composite Membrane of Niobium(V) Oxide and Cellulose Acetate: Preparation and Characterization
β Scribed by Elvio A. Campos; Yoshitaka Gushikem
- Publisher
- Elsevier Science
- Year
- 1997
- Tongue
- English
- Weight
- 980 KB
- Volume
- 193
- Category
- Article
- ISSN
- 0021-9797
No coin nor oath required. For personal study only.
β¦ Synopsis
Composite membranes of niobium(V) oxide and cellulose acetate (Cel/Nb2O5) were prepared with the following Nb2O5 loadings (in wt%): 1.1, 6.1, 9.8, 15.6, and 20.9. The thermal stability of the membranes slightly decreased in relation to the pure membrane on incorporation of the metal oxide into the matrix. Scanning electron microscopy and niobium mapping with an X-ray EDS microprobe showed that the metal oxide particles are homogeneously dispersed in the matrix. The electronic absorption bands indicated that the oxide particle size varies from that of the monomer to those of oligomer species on increased Nb2O5 loading in the matrix. The dispersed oxide possesses mainly Lewis acid character, a clear indication that on increasing the oxide loading in the matrix, the coordination number of the metal is not saturated by formation of the Nb-O-Nb bond. Copyright 1997Academic Press
π SIMILAR VOLUMES
## Abstract Four lots of cellulose acetate (CA) membranes, modified with polyacrylic acid, using various plasticizers, and coated with polyaniline (PANI) were prepared. The morphology of the membranes was evaluated by using scanning electron microscopy, and the membranes showed larger pore size whe
The electrochemical and electrokinetic aspects of cellulose acetate membranes of varying pore structure and desalting abilities have been investigated. The electrochemical studies included measurement of conductance and membrane potential for various membrane electrolyte systems. The electrokinetic