| Literature DB >> 31717371 |
Leyre Pérez-Álvarez1,2, Leire Ruiz-Rubio1,2, Isabel Moreno3, José Luis Vilas-Vilela1,2.
Abstract
There is currently an increasing interest in the development of polyacrylonitrile (PAEntities:
Keywords: hydrolysis; polyacrylonitrile; surface modification
Year: 2019 PMID: 31717371 PMCID: PMC6918364 DOI: 10.3390/polym11111843
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Figure 1(A) Simple schematic representation of the mechanism of PAN (Polyacrylonitrile) hydrolysis, and (B) FTIR (Fourier-transform infrared spectroscopy) spectra of PAN membranes for different hydrolysis times.
Figure 2(A) XPS (X-ray photoelectron spectroscopy) curves of PAN membranes and atomic surface composition of PAN membranes at different hydrolysis times. Deconvolution of untreated (--, red) and hydrolyzed (—, blue) (1.5 h) PAN membranes for (B) C1s, (C) O1s, and (D) N1s peak.
Figure 3Content of carboxylic groups in hydrolyzed PAN membranes for different treatment times determined by Toluidine blue O (TBO) colorimetric method.
Figure 4SEM images of PAN membrane (A) untreated surface × 2.5 k, (B) untreated cross-section × 1.5 k, (C) amplified untreated cross-section × 5.0 k and hydrolyzed during 1.5 h × 1.5 k, (D) surface × 2.5 k, (E) cross-section × 1.5 k, and (F) amplified hydrolyzed cross-section × 4.5 k.
Figure 5(•) Water and (■) –COOH mass loss (w/w %) of PAN membranes as a function of hydrolysis time, and thermogravimetric curves of hydrolyzed PAN membranes for the more representative hydrolysis times.
Figure 6Contact angle of PAN membranes for different hydrolysis reaction times.
Figure 7Assays of stress–strain of hydrolyzed PAN membranes.