Figure 1.
Three kinds of phenyl propane monomer units of lignin, including (a) p-hydroxyphenyl propane (H); (b) guaiacyl propane (G), and (c) syringyl propane (S).
Figure 1.
Three kinds of phenyl propane monomer units of lignin, including (a) p-hydroxyphenyl propane (H); (b) guaiacyl propane (G), and (c) syringyl propane (S).
Scheme 1.
Demethylation route of WSAL (R represents H, OH or –OCH3). (demethylation was carried out with 10; 1 molar ratio of ICH to lignin at 145 °C for 3 h with 4 mL DMF under nitrogen atmosphere).
Scheme 1.
Demethylation route of WSAL (R represents H, OH or –OCH3). (demethylation was carried out with 10; 1 molar ratio of ICH to lignin at 145 °C for 3 h with 4 mL DMF under nitrogen atmosphere).
Figure 2.
Sample schematic for lap-shear testing (100 mm × 25 mm × 4.0 mm), with two layers of pine veneers coated with one layer of adhesive.
Figure 2.
Sample schematic for lap-shear testing (100 mm × 25 mm × 4.0 mm), with two layers of pine veneers coated with one layer of adhesive.
Figure 3.
FTIR spectra of acetylated WSAL and D-WSAL with 0 (a), 5:1 (b), 10:1 (c), 12:1 (d) and 15:1 (e) molar ratio of ICH to lignin, prepared at 145 °C for 3 h with 4 mL DMF under nitrogen atmosphere.
Figure 3.
FTIR spectra of acetylated WSAL and D-WSAL with 0 (a), 5:1 (b), 10:1 (c), 12:1 (d) and 15:1 (e) molar ratio of ICH to lignin, prepared at 145 °C for 3 h with 4 mL DMF under nitrogen atmosphere.
Figure 4.
FTIR spectra of D-WSAL prepared with 2.5 mL (a), 4 mL (b), and 5.5 mL (c) DMF with 12:1 molar ratio of ICH to lignin, at 145 °C for 3 h under nitrogen atmosphere.
Figure 4.
FTIR spectra of D-WSAL prepared with 2.5 mL (a), 4 mL (b), and 5.5 mL (c) DMF with 12:1 molar ratio of ICH to lignin, at 145 °C for 3 h under nitrogen atmosphere.
Figure 5.
FTIR spectra of D-WSAL synthesized at 135 °C (a), 145 °C (b), and 155 °C (c) with 12:1 molar ratio of ICH to lignin for 3 h with 4 mL of DMF under nitrogen atmosphere.
Figure 5.
FTIR spectra of D-WSAL synthesized at 135 °C (a), 145 °C (b), and 155 °C (c) with 12:1 molar ratio of ICH to lignin for 3 h with 4 mL of DMF under nitrogen atmosphere.
Figure 6.
FTIR spectra of WSAL prepared for 7 h (a), 5 h (b), 3 h (c), and 2 h (d) with 12:1 molar ratio of ICH to lignin with 4 mL DMF at 145 °C under nitrogen atmosphere.
Figure 6.
FTIR spectra of WSAL prepared for 7 h (a), 5 h (b), 3 h (c), and 2 h (d) with 12:1 molar ratio of ICH to lignin with 4 mL DMF at 145 °C under nitrogen atmosphere.
Figure 7.
FTIR spectra of WSAL (a) and D-WSAL (b) prepared under the optimum demethylation condition: 12:1 molar ratio of ICH to lignin, 145 °C, 4 mL DMF, 3 h reaction time under nitrogen atmosphere.
Figure 7.
FTIR spectra of WSAL (a) and D-WSAL (b) prepared under the optimum demethylation condition: 12:1 molar ratio of ICH to lignin, 145 °C, 4 mL DMF, 3 h reaction time under nitrogen atmosphere.
Figure 8.
1H NMR spectra of WSAL (a) and D-WSAL (b) prepared under the optimum demethylation condition: the demethylation process was carried out with 12 molar ratio of ICH to lignin, prepared at 145 °C with 4 mL DMF for 3 h under nitrogen atmosphere.
Figure 8.
1H NMR spectra of WSAL (a) and D-WSAL (b) prepared under the optimum demethylation condition: the demethylation process was carried out with 12 molar ratio of ICH to lignin, prepared at 145 °C with 4 mL DMF for 3 h under nitrogen atmosphere.
Figure 9.
GPC spectrum of D-WSAL prepared under the optimum demethylation condition: 12:1 molar ratio of ICH to lignin, 145 °C, 4 mL DMF, for 3 h under nitrogen atmosphere.
Figure 9.
GPC spectrum of D-WSAL prepared under the optimum demethylation condition: 12:1 molar ratio of ICH to lignin, 145 °C, 4 mL DMF, for 3 h under nitrogen atmosphere.
Table 1.
Results of FTIR semi-quantitative analysis of the relative values of some functional groups of WSAL and D-WSAL calculated with the phenyl group’s skeleton vibration peak at 1503 cm−1 as the reference.
Table 1.
Results of FTIR semi-quantitative analysis of the relative values of some functional groups of WSAL and D-WSAL calculated with the phenyl group’s skeleton vibration peak at 1503 cm−1 as the reference.
ICH/lignin (mol/mol) | Relative values vs. reference peak |
---|
C–H stretching vibration of –CH3 and –CH2 | C–O deformation vibration of CH3–O– | C–O stretching vibration of Ar–OH |
---|
0:1 | peak area ratio | A2,926/A1,506 | A1,457/A1,506 | A1,200/A1,506 |
relative value | 1.02 | 0.82 | 1.01 |
5:1 | peak area ratio | A2,927/A1,509 | A1,462/A1,509 | A1,202/A1,509 |
relative value | 1.34 | 0.45 | 2.92 |
10:1 | peak area ratio | A2,926/A1,506 | A1,459/A1,506 | A1,204/A1,506 |
relative value | 2.62 | 0.25 | 7.21 |
12:1 | peak area ratio | A2,930/A1,505 | A1,460/A1,505 | A1,205/A1,505 |
relative value | 3.41 | 0.17 | 11.90 |
15:1 | peak area ratio | A2,926/A1,506 | A1,459/A1,506 | A1,200/A1,508 |
relative value | 5.70 | 0.19 | 10.31 |
Table 2.
Relative values of functional groups on D-WSAL prepared with 2.5 mL, 4 mL, and 5.5 mL DMF with 12:1 molar ratio of ICH to lignin, at 145 °C for 3 h under nitrogen atmosphere. (Phenyl group’s skeleton vibration peak at 1503 cm−1 was selected as the reference, the relative values of other groups by area ratios of the peaks were calculated.)
Table 2.
Relative values of functional groups on D-WSAL prepared with 2.5 mL, 4 mL, and 5.5 mL DMF with 12:1 molar ratio of ICH to lignin, at 145 °C for 3 h under nitrogen atmosphere. (Phenyl group’s skeleton vibration peak at 1503 cm−1 was selected as the reference, the relative values of other groups by area ratios of the peaks were calculated.)
DMF/lignin (w/w) | Relative values based on reference peak |
---|
C–H stretching vibration of –CH3 and –CH2 | C–O deformation vibration of CH3–O– | C–O stretching vibration of Ar–OH |
---|
11.9:1 | peak area ratio | A2,925/A1,504 | A1,452/A1,504 | A1,200/A1,504 |
relative value | 2.68 | 0.27 | 7.52 |
19.0:1 | peak area ratio | A2,927/A1,503 | A1,454/A1,503 | A1,204/A1,503 |
relative value | 3.41 | 0.17 | 11.90 |
26.1:1 | peak area ratio | A2,927/A1,505 | A1,457/A1,505 | A1,204/A1,505 |
relative value | 4.02 | 0.24 | 9.83 |
Table 3.
Relative values of functional groups on D-WSALs synthesized at 135, 145, and 155 °C (phenyl group’s skeleton vibration peak at 1503 cm−1 was selected as the reference, the relative values of other groups by area ratios of the peaks were calculated.)
Table 3.
Relative values of functional groups on D-WSALs synthesized at 135, 145, and 155 °C (phenyl group’s skeleton vibration peak at 1503 cm−1 was selected as the reference, the relative values of other groups by area ratios of the peaks were calculated.)
Temperature (°C) | Relative values based on reference peak |
---|
C–H stretching vibration of –CH3 and –CH2 | C–O deformation vibration of CH3–O– | C–O stretching vibration of Ar–OH |
---|
130 | peak ratio | A2,926/A1,506 | A1,456/A1,506 | A1,203/A1,506 |
relative value | 2.98 | 0.23 | 7.92 |
145 | peak ratio | A2,927/A1,503 | A1,454/A1,503 | A1,204/A1,503 |
relative value | 3.41 | 0.17 | 11.90 |
155 | peak ratio | A2,928/A1,503 | A1,465/A1,503 | A1,206/A1,503 |
relative value | 4.11 | 0.22 | 7.63 |
Table 4.
Relative values of functional groups on D-WSALs under nitrogen atmosphere for 7, 5, 3, and 2 h (phenyl group’s skeleton vibration peak at 1503 cm−1 was selected as the reference, the relative values of other groups by area ratios of the peaks were calculated).
Table 4.
Relative values of functional groups on D-WSALs under nitrogen atmosphere for 7, 5, 3, and 2 h (phenyl group’s skeleton vibration peak at 1503 cm−1 was selected as the reference, the relative values of other groups by area ratios of the peaks were calculated).
Time (h) | Relative values based on reference peak |
---|
C–H stretching vibration of –CH3 and –CH2 | C–O deformation vibration of CH3–O– | C–O stretching vibration of Ar–OH |
---|
2 | peak ratio | A2,927/A1,502 | A1,458/A1,502 | A1,204/A1,502 |
relative value | 2.15 | 0.18 | 11.00 |
3 | peak ratio | A2,927/A1,503 | A1,454/A1,503 | A1,204/A1,503 |
relative value | 3.41 | 0.17 | 11.90 |
5 | peak ratio | A2,936/A1,506 | A1,456/A1,506 | A1,204/A1,506 |
relative value | 4.06 | 0.17 | 11.77 |
7 | peak ratio | A2,926/A1,506 | A1,456/A1,506 | A1,203/A1,506 |
relative value | 5.70 | 0.12 | 10.31 |
Table 5.
Assignments of characteristic absorption peaks from the FTIR spectra of WSAL and D-WSAL.
Table 5.
Assignments of characteristic absorption peaks from the FTIR spectra of WSAL and D-WSAL.
WSAL band position (cm−1) | D-WSAL band position (cm−1) | Assignments |
---|
3,430 | 3,438 | O–H stretching |
2,930 | 2,927 | C–H stretching of methyl and methylene group |
2,848 | 2848 | C–H stretching of methoxy group |
1,505 | 1,503 | Aromatic skeletal vibration |
1,468 | 1,459 | C–O deformation of methoxyl group |
1,372 | 1,373 | C–O of syringyl (S) ring |
1,264 | 1265 | C–O of guaiacy (G) ring |
1,205 | 1,203 | C–O stretching of phenolic hydroxyl group |
843 | 837 | C–O of p-hydroxyphenyl (H) propane |
Table 6.
Relative contents of the protons calculated from 1H NMR spectra.
Table 6.
Relative contents of the protons calculated from 1H NMR spectra.
Signal (ppm) | H% | Assignment |
---|
WSAL | D-WSAL |
---|
1.90–1.21 | 9.5 | 21.7 | C–H |
2.17–1.96 | 13.1 | 10.9 | R–OH |
2.40–2.17 | 5.2 | 16.0 | Ar–OH |
4.00–3.50 | 17.2 | 8.2 | CH3–O– |
Table 7.
Phenolic hydroxyl and alcohol hydroxyl contents of WSAL or D-WSAL.
Table 7.
Phenolic hydroxyl and alcohol hydroxyl contents of WSAL or D-WSAL.
Sample | Phenol hydroxyl content (%) | Alcohol hydroxyl content (%) | Total hydroxyl content (%) |
---|
WSAL | 1.89 | 4.74 | 6.63 |
D-WSAL | 6.10 | 4.16 | 10.26 |
Table 8.
GPC results of D-WSAL prepared under the optimum demethylation condition (the demethylation process was carried out with 12:1 molar ratio of ICH to lignin, prepared at 145 °C with 4 mL DMF for 3 h under nitrogen atmosphere).
Table 8.
GPC results of D-WSAL prepared under the optimum demethylation condition (the demethylation process was carried out with 12:1 molar ratio of ICH to lignin, prepared at 145 °C with 4 mL DMF for 3 h under nitrogen atmosphere).
Sample | | | Polydispersity |
---|
D-WSAL | 3,931 | 4,033 | 1.03 |
Table 9.
Properties of PF, D-LPF, and LPF adhesives.
Table 9.
Properties of PF, D-LPF, and LPF adhesives.
Sample | pH | Solids content (%) | Free formaldehyde content (%) | Free phenol content (%) | Gel time at 150 °C (s) | Dry bonding strength (MPa) | Wet bonding strength (MPa) |
---|
PF | 10.2 | 40.9 | 0.06% | 3.01 | 531 | 2.54 | 2.34 |
LPF a | 10.4 | 49.2 | 0.65% | 2.77 | 356 | 1.13 | 0.97 |
D-LPF b | 10.4 | 48.7 | 0.22% | 0.92 | 243 | 2.28 | 2.11 |