| Literature DB >> 30960062 |
Xuexi Chen1, Junfei Li2, Ming Gao3.
Abstract
A flame retardant rigid polyurethane foam (RPUF) system containing functionalized graphene oxide (fGO), expandable graphite (EG), and dimethyl methyl phosphonate (DMMP) was prepared and investigated. The results show that the limiting oxygen index (LOI) of the flame-retardant-polyurethane-fGO (FRPU/fGO) composites reached 28.1% and UL-94 V-0 rating by adding only 0.25 g fGO. The thermal degradation of FRPU samples was studied using thermogravimetric analysis (TG) and the Fourier transform infrared (FT-IR) analysis. The activation energies (Ea) for the main stage of thermal degradation were obtained using the Kissinger equation. It was found that the fGO can considerably increase the thermal stability and decrease the flammability of RPUF. Additionally, the Ea of FRPU/fGO reached 191 kJ·mol-1, which was 61 kJ·mol-1 higher than that of the pure RPUF (130 kJ·mol-1). Moreover, scanning electron microscopy (SEM) results showed that fGO strengthened the compactness and the strength of the "vermicular" intumescent char layer improved the insulation capability of the char layer to gas and heat.Entities:
Keywords: activation energies; graphene oxide; rigid polyurethane foam; thermogravimetric analysis
Year: 2019 PMID: 30960062 PMCID: PMC6402230 DOI: 10.3390/polym11010078
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Formulations containing different additive levels, limiting oxygen index (LOI) value, and UL-94 rating of the specimens.
| Sample | Polyether Polyol (g) | Isocyanate (g) | EG (phr) | DMMP (phr) | GO (phr) | fGO (phr) | LOI (%) | UL-94 Rating |
|---|---|---|---|---|---|---|---|---|
| RPUF | 50 | 50 | – | – | – | 19.0 | No rating | |
| FRPU | 50 | 50 | 7.5 | 2.5 | – | 26.5 | V-1 | |
| FRPU/GO | 50 | 50 | 7.5 | 2.5 | 0.25 | 27.5 | V-0 | |
| FRPU/fGO | 50 | 50 | 7.5 | 2.5 | 0.25 | 28.1 | V-0 |
Figure 1TG and DTG curves of the specimens under nitrogen and air atmospheres: (a) rigid polyurethane foam (RPUF); (b) flame-retardant-polyurethane systems (FRPU); (c) FRPU/ graphene oxide (GO); and (d) FRPU/ functionalized graphene oxide (fGO).
Typical thermogravimetric analysis (TG) parameters of flame retardant thermosets.
| Sample | Air | Nitrogen | ||||||
|---|---|---|---|---|---|---|---|---|
| Residue at 700 °C (%) | Residue at 700 °C (%) | |||||||
|
|
|
| ||||||
| RPUF | 281 | 134 | 317 | 541 | 0.5 | 276 | 349 | 15.9 |
| FRPU | 257 | 161 | 320 | 549 | 7.0 | 256 | 345 | 20.3 |
| FRPU/GO | 260 | 163 | 319 | 548 | 9.5 | 269 | 346 | 22.7 |
| FRPU/fGO | 269 | 164 | 321 | 551 | 12.5 | 278 | 347 | 24.4 |
Figure 2TG curves of the RPUF specimens in a nitrogen atmosphere at the heating rates of 5, 10, 15, and 20 °C·min−1: (a) RPUF; (b) FRPU; (c) FRPU/GO; and (d) FRPU/fGO.
Figure 3Kissinger method applied to the experimental TG data of RPUF specimens at different heating rates under a nitrogen atmosphere.
Activation energies (E) of the RPUF specimens.
| Sample | Heating Rate, Φ (°C·min−1) | Activation Energy, | |
|---|---|---|---|
| RPUF | 5 | 326.6 | 130 |
| 10 | 347.0 | ||
| 15 | 349.3 | ||
| 20 | 358.0 | ||
| FRPU | 5 | 325.6 | 128 |
| 10 | 338.2 | ||
| 15 | 346.1 | ||
| 20 | 357.7 | ||
| FRPU/GO | 5 | 330.2 | 170 |
| 10 | 338.0 | ||
| 15 | 348.2 | ||
| 20 | 353.3 | ||
| FRPU/fGO | 5 | 330.3 | 191 |
| 10 | 339.3 | ||
| 15 | 346.7 | ||
| 20 | 351.8 |
Figure 4Fourier transform infrared (FT-IR) spectra of the RPUF specimens obtained at specific temperatures: (a) RPUF; (b) FRPU; (c) FRPU/GO; and (d) FRPU/fGO.
Figure 5Digital photos of the residues of RPUF samples: (a) RPUF; (b) FRPU; (c) FRPU/GO; and (d) FRPU/fGO.
Figure 6Scanning electron microscopy (SEM) images of the residues of RPUF samples: (a) RPUF; (b) FRPU; (c) FRPU/GO; and (d) FRPU/fGO.