Effect of Water Leaching on Photodegraded Scots Pine and Spruce Timbers Monitored by FTIR Spectroscopy
Abstract
:1. Introduction
2. Materials and Methods
3. Results and Discussion
4. Conclusions
- Leached samples produced greater lignin degradation than in purely UV treated samples. This finding presents that the leaching effect of rain opens deeper layers for UV degradation raising the rate of degradation of the timber.
- Scots pine suffered greater lignin degradation than spruce and produced higher absorption increase on the absorption region of unconjugated carbonyls. Unconjugated carbonyl groups showed the greatest sensitive to leaching. Spruce was more susceptible to leaching of unconjugated carbonyl groups than Scots pine. These results show that both Scots pine and spruce timbers need proper surface finishing in case of outdoor applications.
- For pure UV irradiated samples, 15 days were enough to generate the maximum lignin degradation. In contrast, leached samples produced continuously increasing lignin degradation during the 20-day UV irradiation. The chosen UV irradiation and leaching times were not long enough to determine the maximum of lignin degradation. These results highlight that combined UV irradiation and water leaching generate degradation of wood in deeper layers than the treatments separately.
- The photodegradation produced two absorption increases in the unconjugated carbonyl region at 1706 and 1764 cm−1 wavenumbers. The absorption band at 1764 cm-1 showed much greater leaching effect than the band at 1706 cm-1. These results strengthen the different origin of these two types of absorption increases.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Cycles | UV Irradiation (UV) | Water Leaching (w) | Result |
---|---|---|---|
1. cycle | 1 day | 1 UV | |
1 day | 1 UV + 1 w | ||
2. cycle | 2 days | 3 UV + 1 w | |
1 day | 3 UV + 2 w | ||
3. cycle | 2 days | 5 UV + 2 w | |
1 day | 5 UV + 3 w | ||
4. cycle | 2 days | 7 UV + 3 w | |
1 day | 7 UV + 4 w | ||
5. cycle | 2 days | 9 UV + 4 w | |
1 day | 9 UV + 5 w | ||
6. cycle | 2 days | 11 UV + 5 w | |
1 day | 11 UV + 6 w | ||
7. cycle | 2 days | 13 UV + 6 w | |
1 day | 13 UV + 7 w | ||
8. cycle | 2 days | 15 UV + 7 w | |
1 day | 15 UV + 8 w | ||
9. cycle | 2 days | 17 UV + 8 w | |
1 day | 17 UV + 9 w | ||
10. cycle | 3 days | 20 UV + 9 w | |
1 day | 20 UV + 10 w |
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Preklet, E.; Tolvaj, L.; Visi-Rajczi, E.; Hofmann, T. Effect of Water Leaching on Photodegraded Scots Pine and Spruce Timbers Monitored by FTIR Spectroscopy. Forests 2021, 12, 833. https://doi.org/10.3390/f12070833
Preklet E, Tolvaj L, Visi-Rajczi E, Hofmann T. Effect of Water Leaching on Photodegraded Scots Pine and Spruce Timbers Monitored by FTIR Spectroscopy. Forests. 2021; 12(7):833. https://doi.org/10.3390/f12070833
Chicago/Turabian StylePreklet, Edina, László Tolvaj, Eszter Visi-Rajczi, and Tamás Hofmann. 2021. "Effect of Water Leaching on Photodegraded Scots Pine and Spruce Timbers Monitored by FTIR Spectroscopy" Forests 12, no. 7: 833. https://doi.org/10.3390/f12070833
APA StylePreklet, E., Tolvaj, L., Visi-Rajczi, E., & Hofmann, T. (2021). Effect of Water Leaching on Photodegraded Scots Pine and Spruce Timbers Monitored by FTIR Spectroscopy. Forests, 12(7), 833. https://doi.org/10.3390/f12070833