| Literature DB >> 35547477 |
Y M Zhang1, Q Zhao1, L Li2, R Yan1, J Zhang1, J C Duan1, B J Liu3, Z Y Sun4, M Y Zhang1, W Hu1, N N Zhang1.
Abstract
In this work, new lignin-based flame retardant LHDs were successfully synthesized through the reaction between lignin, 9,10-dihydro-9-oxa-10-phosphaphenanthrene-10-oxide (DOPO) and hexamethylene diisocyanate (HDI). The chemical structure of LHD was characterized by FTIR, 1H NMR, 31P NMR. The thermal stability of LHD was studied by TGA. The results showed that the residual carbon content of L15HD (15% of lignin in LHD) at 600 °C reached 16.55%, indicating that this prepared flame retardant can be a type of good char forming agent. LHDs were then applied to prepare flame-retardant lignin-based polyurethane (FLPU). Lignin-based polyurethane (LPU) was synthesized by the reaction between lignin, polyethylene glycol 200 (PEG 200) and hexamethylene diisocyanate (HDI). The limiting oxygen index (LOI) value of the FLPU reached 30.2% when the addition content of L15HD (15% lignin in LHD) in L20PU (20% lignin in LPU) was 25%, exhibiting excellent flame-retardant properties. Scanning electron microscopy (SEM) analysis of the FLPU char residual showed that there was a continuous dense outer carbon layer on the residue surface, and the inner carbon layer had many expansion bubbles, indicating the LHDs have an excellent flame retardant effect for PU. In addition, FLPU presented better hardness and adhesion than PU. The hardness of FL15-25L20PU (lignin content in LPU was 20%, and added content of L15HD in LPU was 25%) reached 4H, and its adhesion was 0. These excellent properties illustrated that the LHDs are ideal flame retardants and reinforcing agents for LPU because of the co-curing and strong interface between LHD and LPU. This journal is © The Royal Society of Chemistry.Entities:
Year: 2018 PMID: 35547477 PMCID: PMC9086252 DOI: 10.1039/c8ra05598j
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Comparison of flame retardant with lignin reported in literature
| References | Modified method | Flame retardancy |
|---|---|---|
|
| Lignosulfonate/APP | The heat release rate (HRR) and total heat release (THR) was reduced; the LOI value increased to be over 30% |
|
| Liquefied lignin-based polyol (LBP)/MAPP/organically modified layered double hydroxide (OLDH) | LOI was up to 28.1%; the initial degradation temperature of modified foam increased from 228 °C to 265 °C, and the mass residue of foam at 900 °C increased from 0.6 to 15.4% |
|
| Lignin was chemically grafted with phosphorus–nitrogen-containing groups | LOI values reached to be 28.3%; the UL-94 tests were achieved V-1 rate |
|
|
| The samples reached V-0 in UL-94 test |
|
|
| BKZ tests were reached the highest to HF-2; thermal stability was improved |
Scheme 1Synthesis of LHDs.
Fig. 1FTIR spectra of DOPO and LHDs.
Fig. 21H NMR of DOPO and LHDs.
Fig. 331P NMR of DOPO and LHDs.
Fig. 4TGA curves of DOPO and LHDs.
TGA characterization of DOPO and LHDsa
| Samples |
|
| Char residue (%) | ||
|---|---|---|---|---|---|
| 500 °C | 600 °C | 700 °C | |||
| DOPO | 220 | 237 | 1.34 | 0.78 | 0.42 |
| Lignin | 210 | 247 | 51.89 | 42.59 | 36.72 |
| L5HD | 253 | 266 | 10.94 | 10.49 | 10.42 |
| L10HD | 250 | 262 | 13.66 | 13.00 | 12.82 |
| L15HD | 242 | 258 | 17.54 | 16.55 | 16.13 |
T 5: initial degradation temperature (temperature at 5% weight loss). T10: temperature at 10% weight loss.
Fig. 5XPS spectra of L15HD at different temperature (a); P2p XPS spectra of L15HD at different temperature (b); C1s XPS spectra at room temperature (c); C1s XPS spectra at 230 °C (d); C1s XPS spectra of at 350 °C (e); C1s XPS spectra at 500 °C (f); P2p XPS spectra at room temperature (g); P2p XPS spectra at 230 °C (h); P2p XPS spectra at 350 °C (i); P2p XPS spectra at 500 °C (j).
XPS data of L15HD at different temperature
| Peak | Temperature (°C) | |||
|---|---|---|---|---|
| RT | 280 | 380 | 500 | |
| C1s | 74.45 | 76.17 | 78.96 | 78.94 |
| O1s | 18.9 | 15.25 | 13.58 | 13.4 |
| N1s | 4.25 | 4.79 | 4.01 | 4.88 |
| P2p | 2.4 | 3.80 | 3.45 | 2.79 |
TGA and LOI value characterization of the LPU-LHDa
| Samples | LOI (%) |
|
| Residue at 600 °C (%) |
|---|---|---|---|---|
| PU | 17.1 | 299 | 314 | 2.48 |
| L20PU | 21.3 | 266 | 295 | 19.92 |
| FL5-15L20PU | 25.3 | 263 | 297 | 19.55 |
| FL10-15L20PU | 28.3 | 268 | 290 | 11.87 |
| FL15-15L20PU | 28.9 | 265 | 290 | 17.98 |
| FL15-20L20PU | 29.1 | 257 | 287 | 18.21 |
| FL15-25L20PU | 30.2 | 254 | 286 | 21.01 |
T 5: initial degradation temperature (temperature at 5% weight loss); T10: temperature 10% weight loss occurs. FL15-25L20PU: content of lignin in the flame-retardant lignin-based polyurethane is 20%, content of lignin in the LHD is 15%, and the mass fraction of the LHD is 25%.
Fig. 6Flame-retardancy mechanism for FLPU.
Fig. 7TGA curves of FLPU films.
Fig. 8XPS spectra scan of FL15-25L20PU at different temperature (a); P2p XPS spectra of FL15-25L20PU at different temperature (b); C1s XPS spectra at room temperature (c); C1s XPS spectra at 280 °C (d); C1s XPS spectra at 380 °C (e); C1s XPS spectra at 500 °C (f); P2p XPS spectra at room temperature (g); P2p XPS spectra at 280 °C (h); P2p XPS spectra at 380 °C (i); P2p XPS spectra at 500 °C (j).
XPS data of FL15-25L20PU at different temperature
| Peak | Temperature (°C) | |||
|---|---|---|---|---|
| RT | 280 | 380 | 500 | |
| C1s | 77.63 | 78.89 | 83.5 | 85.44 |
| O1s | 18.79 | 13.46 | 9.13 | 8.26 |
| N1s | 3.23 | 6.52 | 6.22 | 5.42 |
| P2p | 0.35 | 1.13 | 1.14 | 0.89 |
Fig. 9SEM of exterior and interior surfaces of the char residue after LOI test: (a): PU; (b): L20PU; (c): FL5-15L20PU; (d): FL10-15L20PU; (e): FL15-15L20PU; (f): FL15-25L20PU; (g)/(h)/(i) were the enlarged view of (d)/(e)/(f).
Coating properties of the FLPU film
| Samples | Hardness | Flexibility (mm) | Adhesion | Impact resistance(100 cm/1000g) |
|---|---|---|---|---|
| PU | B | 2 | 0 | Pass |
| L20PU | 3H | 2 | 0 | Pass |
| FL5-15L20PU | 3H | 2 | 0 | Pass |
| FL10-15L20PU | 3H | 2 | 0 | Pass |
| FL15-15L20PU | 4H | 2 | 0 | Pass |
| FL15-20L20PU | 4H | 2 | 0 | Pass |
| FL15-25L20PU | 4H | 2 | 0 | Pass |