| Literature DB >> 30979241 |
Nicolas Mys1, Ruben Van De Sande2, An Verberckmoes3, Ludwig Cardon4.
Abstract
Polysulfone (Entities:
Keywords: ball milling; microsphere; polymer characterization; polysulfone; rotor milling; spray drying
Year: 2016 PMID: 30979241 PMCID: PMC6431832 DOI: 10.3390/polym8040150
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Shortlist of Hansen Solubility Parameter (HSP) parameters of polysulfone (PSU) and possible compatible solvents [24].
| Solvents | δt (MPa1/2) | δd (MPa1/2) | δp (MPa1/2) | δh (MPa1/2) |
|---|---|---|---|---|
| 23.6 | 19.8 | 11.2 | 6.2 | |
| 18.9 | 17.8 | 3.1 | 5.7 | |
| 24.9 | 17.4 | 13.7 | 11.3 | |
| 22.8 | 16.8 | 11.5 | 10.2 | |
| 19.5 | 16.8 | 5.7 | 8.0 |
Figure 1Viscosity curve of PSU solutions in N,N-Dimethylformamide (DMF) as a function of mass percent of PSU measured at 25 °C. The two-fluid nozzle theoretically only allows the spraying of solutions lower than 15 wt % (solid line).
Figure 2(a) Micrograph of spray-dried PSU from a 12 wt % solution in DMF; (b) insets show a magnification of a collapsed structure (above) and string-like structures (below).
Figure 3(a) Microscopic image of PSU taken after 10 min ball milling with (b) enlargement by SEM of the fractionated powder.
Figure 4Schematics of the rotor milling process with the three-step refinement. After milling, the powders are sieved and the redundant powder is re-fed to the rotor miller for further refinement.
Figure 5(a) Coarse powder by pulverization of pellets at 500 μm; (b) First refinement step by pulverisation of coarse powder at 120 μm; (c) Second refinement step by further pulverization of the refined powder until 80 μm and (d) Final powder after additional sieving at 80 μm.
Figure 6Particle Size Distribution (PSD) of the different processed samples. Spray-Dried (SD) sample at best parameter settings, Rotor Milled (RM) powder subjected to the three-step refinement process with final sieving step, and Ball Milled (BM) sample after 10 min (fractionated fine powder).
Figure 7GPC measurements on unprocessed PSU, Rotor Milled powder subjected to the three step refinement process with additional sieving at 80 μm and spray-dried PSU obtained at the best parameter settings. The second measurements are represented in a lighter shade of the representative color.
Gel Permeation Chromatography (GPC) measurements of virgin and processed samples.
| Processing method | Polydispersity | ||
|---|---|---|---|
| 60,318 ± 283 | 29,804.5 ± 146 | 2.02 ± 4 | |
| 60,293 ± 217 | 30,297.5 ± 1,272 | 1.99 ± 0.11 | |
| 61,662 ± 110 | 30,803.5 ± 1,769 | 2.01 ± 0.09 | |
| n.a..3 | n.a..3 | n.a..3 |
1 Weight average molecular weight; weighted molecular weight according to weight fractions; 2 Number average molecular weight; total weight of the sample divided by the number of molecules in sample; 3 n.a. = not applicable.
Figure 8First heating run of DSC measurements on (A) spray-dried powder obtained at best parameter settings; (B) rotor milled powder subjected to the three step refinement process with additional sieving at 80 μm; (C) virgin PSU and (D) fine powder obtained after 10 min of ball milling the PSU pellets.
Figure 9Second heating run of DSC measurements on (A) spray-dried powder obtained at best parameter settings, (B) rotor milled powder subjected to the three step refinement process with additional sieving at 80 μm, (C) virgin PSU and (D) fine powder obtained after 10 min of ball milling the PSU pellets.
Figure 10XRD diffractograms of the fine powder obtained after 10 min of ball milling, rotor milled powder subjected to the three step refinement process with additional sieving at 80 μm, and unprocessed PSU pellets. Small peaks marked with an asterisk are believed to be attributed to the orientation induced in PSU by the milling method.
Figure 11Evaporation model that illustrates possible morphology occurrence depending on parameters used.
Figure 12Possible degradation mechanisms of polysulfone given: (a) crosslinking by phenylation of phenyl radical formed by cleavage of C–S bond; (b) intramolecular phenylation by hydrogen abstraction by the phenyl radical; (c) β-scission of isopropylidene radical following H-abstraction [31,33,35].