Skip to main content
Have a personal or library account? Click to login
The degradation of kraft lignin during hydrothermal treatment for phenolics Cover

The degradation of kraft lignin during hydrothermal treatment for phenolics

By:  and    
Open Access
|Sep 2015

References

  1. 1. Du, X., Gellerstedt, G. & Li, J. (2013). Universal fractionation of lignin–carbohydrate complexes (LCCs) from lignocellulosic biomass: an example using spruce wood.74, 328–338. DOI: 10.1111/tpj.12124.
  2. 2. Calvo-Flores, F.G. & Dobado, J.A. (2010). Lignin as renewable raw material.3, 1227–1235. DOI: 10.1002/CSSC.201000157.
  3. 3. Zhou, X.-F. (2014). Selective oxidation of kraft lignin over zeolite-encapsulated Co(II) [H]salen and [H]salen complexes.131, 9594–9602. DOI: 10.1002/app.40809.
  4. 4. Joffres, B., Laurenti, D., Charon, N., Daudin, A., Quignard, A. & Geantet, C. (2013). Thermochemical conversion of lignin for fuels and chemicals: A review.68, 753–763. DOI: 10.2516/ogst/2013132.
  5. 5. Babu, B.V. (2008). Biomass pyrolysis: a state-of-the-art review.2, 393–414. DOI: 10.1002/bbb.92.
  6. 6. Murnieks, R., Kampars, V., Malins, K. & Apseniece, L. (2014). Hydrotreating of wheat straw in toluene and ethanol.163, 106–111. DOI: 10.1016/j.biortech.2014.04.022.
  7. 7. Pinkowska, H., Wolak, P. & Zocinska, A. (2012). Hydrothermal decomposition of alkali lignin in sub- and super-critical water.187, 410–414. DOI: 10.1016/J.CEJ.2012.01.092.
  8. 8. Horacek, J., Homola, F., Kubickova, I. & Kubicka, D. (2012). Lignin to liquids over sulfided catalysts.179, 191–198. DOI: 10.1016/j.cattod.2011.06.031.
  9. 9. Chimentao, R.J., Lorente, E., Gispert-Guirado, F., Medina, F. & Lopez, F. (2014). Hydrolysis of dilute acid-pretreated cellulose under mild hydrothermal conditions.111, 116–124. DOI: 10.1016/J.CARBPOL.2014.04.001.
  10. 10. Demirbas, A. (2009). Biorefineries: current activities and future developments.50, 2782–2801. DOI: 10.1016/j.enconman.2009.06.035.
  11. 11. Mafakheri, F. & Nasiri, F. (2014). Modeling of biomass-to-energy supply chain operations: Applications, challenges and research directions.67, 116–126. DOI: 10.1016/J.ENPOL.2013.11.071.
  12. 12. Kang, S., Li, X., Fan, J. & Chang, J. (2013). Hydrothermal conversion of lignin: A review.27, 546–558. DOI: 10.1016/J.RSER.2013.07.013.
  13. 13. Kumar, S. & Gupta, R.B. (2009). Biocrude production from switch grass using subcritical water.23, 5151–5159. DOI: 10.1021/ef900379p.
  14. 14. dos Santos, P.S.B., Erdocia, X., Gatto, D.A. & Labidi, J. (2014). Characterisation of kraft lignin separated by gradient acid precipitation.55, 149–154. DOI: 10.1016/J.indcrop.2014.01.023.
  15. 15. Jansson, Z.L. & Brannvall, E. (2014). Effect of kraft cooking conditions on the chemical composition of the surface and bulk of spruce fibers.34, 291–300. DOI: 10.1080/02773813.2013.872661.
  16. 16. Crawford, R.L. & Pometto, A.L. (1988).. San Diego: Academic Press Inc.
  17. 17. Karagöz, S., Bhaskar, T., Muto, A., Sakata, Y. & Uddin, Md.A. (2004). Low-temperature hydrothermal treatment of biomass: effect of reaction parameters on products and boiling point distributions.18, 234–241. DOI: 10.1021/ef030133g.
  18. 18. Ye, Y., Fan, J. & Chang, J. (2012). Effect of reaction conditions on hydrothermal degradation of cornstalk lignin.94, 190–195. DOI: 10.1016/J.JAAP.2011.12.005.
  19. 19. Pala, M., Kantarli, I.C., Buyukisik, H.B. & Yanik, J. (2014). Hydrothermal carbonization and torrefaction of grape pomace: A comparative evaluation.161, 255–262. DOI: 10.1016/J.BIORTECH.2014.03.052.
  20. 20. Sakaki, T., Shibata, M., Miki, T., Hirosue, H. & Hayashi, N. (1996). Decomposition of cellulose in near-critical water and fermentabality of the product.10, 684–688.
  21. 21. Wahyudiono, Sasaki, M. & Goto, M. (2009). Conversion of biomass model compound under hydrothermal conditions using batch reactor.88, 1656–1664. DOI: 10.1016/J.FUEL.2009.02.028.
  22. 22. Wahyudiono, Kanetake, T., Sasaki, M. & Goto, M. (2007). Decomposition of a lignin model compound under hydrothermal conditions.30, 1113–1122. DOI: 10.1002/ceat.200700066.
  23. 23. Toledano, A., Serrano, L. & Labidi, J. (2014). Improving base catalyzed lignin depolymerization by avoiding lignin repolymerization.116, 617–624. DOI: 10.1016/j.fuel.2013.08.071.
  24. 24. Nada, A.M.A., Yousef, M.A., Shaffei, K.A. & Salah, A.M. (1998). Infrared spectroscopy of some treated lignins.62, 157–163.
  25. 25. Kawamoto, H., Ryoritani, M. & Saka, S. (2008). Different pyrolytic cleavage mechanisms of β-ether bond depending on the side-chain structure of lignin dimers.81, 88–94. DOI: 10.1016/J.JAAP.2007.09.006.
DOI: https://doi.org/10.1515/pjct-2015-0045 | Journal eISSN: 3072-0389 (formerly 1899-4741) | Journal ISSN: 1509-8117
Language: English
Page range: 24 - 28
Published on: Sep 19, 2015
Published by: West Pomeranian University of Technology, Szczecin
In partnership with: Paradigm Publishing Services
Publication frequency: Volume open

© 2015 Kai Tang, Xue-Fei Zhou, published by West Pomeranian University of Technology, Szczecin
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.