DOI QR코드

DOI QR Code

Cationized Lignin Loaded Alginate Beads for Efficient Cr(VI) Removal

  • Jungkyu KIM (Department of Agriculture, Forestry and Bioresources, College of Agriculture & Life Sciences, Seoul National University) ;
  • YunJin KIM (Department of Agriculture, Forestry and Bioresources, College of Agriculture & Life Sciences, Seoul National University) ;
  • Seungoh JUNG (Department of Agriculture, Forestry and Bioresources, College of Agriculture & Life Sciences, Seoul National University) ;
  • Heecheol YUN (Department of Agriculture, Forestry and Bioresources, College of Agriculture & Life Sciences, Seoul National University) ;
  • Hwanmyeong YEO (Department of Agriculture, Forestry and Bioresources, College of Agriculture & Life Sciences, Seoul National University) ;
  • In-Gyu CHOI (Department of Agriculture, Forestry and Bioresources, College of Agriculture & Life Sciences, Seoul National University) ;
  • Hyo Won KWAK (Department of Agriculture, Forestry and Bioresources, College of Agriculture & Life Sciences, Seoul National University)
  • Received : 2023.06.19
  • Accepted : 2023.07.25
  • Published : 2023.09.25

Abstract

In this study, lignin, a lignocellulosic biomass, was chemically modified to produce polyethyleneimine-grafted lignin (PKL) with maximum hexavalent chromium [Cr(VI)] adsorption capacity. Changes in the physicochemical properties due to the cationization of lignin were confirmed through elemental analysis, Fourier transform infrared spectroscopy, and moisture stability evaluation. Alginate (Alg) beads containing PKL (Alg/PKL) were prepared by incorporating cationic lignin into the Alg matrix to apply the prepared PKL in a batch-type water treatment process. The optimal Alg/lignin mixing ratio was selected to increase the Cr(VI) adsorption capacity and minimize lignin elution from the aqueous system. The selected Alg/PKL beads exhibited an excellent Cr(VI) removal capacity of 478.98 mg/g. Isothermal adsorption and thermodynamic analysis revealed that the Cr(VI) removal behavior of the Alg/PKL beads was similar to that of heterogeneous chemical adsorption. In addition, the bulk adsorbent material in the form of beads exhibited adsorption behavior in three stages: surface adsorption, diffusion, and equilibrium.

Keywords

Acknowledgement

This study was conducted with the support of the 'R&D Program for Forest Science Technology (2020215B10-2222-AC01)' and 'R&D Program for Forest Science Technology (2020224D10-2222-AC02)' provided by the Korea Forest Service (Korea Forestry Promotion Institute).

References

  1. Alnaief, M., Alzaitoun, M.A., Garcia-Gonzalez, C.A., Smirnova, I. 2011. Preparation of biodegradable nanoporous microspherical aerogel based on alginate. Carbohydrate Polymers 84(3): 1011-1018. https://doi.org/10.1016/j.carbpol.2010.12.060
  2. Bang, J., Kim, J., Kim, Y., Oh, J.K., Yeo, H., Kwak, H.W. 2022. Preparation and characterization of hydrophobic coatings from carnauba wax/lignin blends. Journal of the Korean Wood Science and Technology 50(3): 149-158. https://doi.org/10.5658/WOOD.2022.50.3.149
  3. Behboudi, G., Shayesteh, K., Tavakkoli Yaraki, M., Ebrahimi, H.A., Moradi, S. 2021. Optimized synthesis of lignin sulfonate nanoparticles by solvent shifting method and their application for adsorptive removal of dye pollutant. Chemosphere 285: 131576.
  4. Cahyani, N., Yunianti, A.D., Suhasman, Pangestu, K.T.P., Pari, G. 2023. Characteristics of bio pellets from spent coffee grounds and pinewood charcoal based on composition and grinding method. Journal of the Korean Wood Science and Technology 51(1): 23-37. https://doi.org/10.5658/WOOD.2023.51.1.23
  5. Chen, N., Cao, S., Zhang, L., Peng, X., Wang, X., Ai, Z., Zhang, L. 2021a. Structural dependent Cr(VI) adsorption and reduction of biochar: Hydrochar versus pyrochar. Science of the Total Environment 783: 147084.
  6. Chen, X., Pizzi, A., Zhang, B., Zhou, X., Fredon, E., Gerardin, C., Du, G. 2021b. Particleboard bio-adhesive by glyoxalated lignin and oxidized dialdehyde starch crosslinked by urea. Wood Science and Technology 56: 63-85. https://doi.org/10.1007/s00226-021-01344-z
  7. Duman, O., Polat, T.G., Diker, C.O., Tunc, S. 2020. Agar/κ-carrageenan composite hydrogel adsorbent for the removal of methylene blue from water. International Journal of Biological Macromolecules 160: 823-835. https://doi.org/10.1016/j.ijbiomac.2020.05.191
  8. Fatriasari, W., Nurhamzah, F., Raniya, R., Laksana, R.P.B., Anita, S.H., Iswanto, A.H., Hermiati, E. 2020. Enzymatic hydrolysis performance of biomass by the addition of a lignin based biosurfactant. Journal of the Korean Wood Science and Technology 48(5): 651-665. https://doi.org/10.5658/WOOD.2020.48.5.651
  9. Fu, Y., Liu, X., Chen, G. 2019. Adsorption of heavy metal sewage on nano-materials such as titanate/TiO2 added lignin. Results in Physics 12: 405-411. https://doi.org/10.1016/j.rinp.2018.11.084
  10. Hasija, V., Raizada, P., Singh, P., Verma, N., Khan, A.A.P., Singh, A., Selvasembian, R., Kim, S.Y., Hussain, C.M., Nguyen, V.H., Le, Q.V. 2021. Pro- gress on the photocatalytic reduction of hexavalent Cr (VI) using engineered graphitic carbon nitride. Process Safety and Environmental Protection 152: 663-678. https://doi.org/10.1016/j.psep.2021.06.042
  11. Hwang, J.W., Oh, S.W. 2023. Mechanical properties and density profile of ceramics manufactured from a board mixed with sawdust and mandarin peels. Journal of the Korean Wood Science and Technology 51(2): 98-108. https://doi.org/10.5658/WOOD.2023.51.2.98
  12. Hwang, U.T., Bae, J., Lee, T., Hwang, S.Y., Kim, J.C., Park, J., Choi, I.G., Kwak, H.W., Hwang, S.W., Yeo, H. 2021. Analysis of carbonization behavior of hydrochar produced by hydrothermal carbonization of lignin and development of a prediction model for carbonization degree using near-infrared spectroscopy. Journal of the Korean Wood Science and Technology 49(3): 213-225. https://doi.org/10.5658/WOOD.2021.49.3.213
  13. Iswanto, A.H., Tarigan, F.O., Susilowati, A., Darwis, A., Fatriasari, W. 2021. Wood chemical compositions of raru species originating from Central Tapanuli, North Sumatra, Indonesia: Effect of differences in wood species and log positions. Journal of the Korean Wood Science and Technology 49(5): 416-429. https://doi.org/10.5658/WOOD.2021.49.5.416
  14. Kim, Y., Park, J., Bang, J., Kim, J., Kim, J.H., Hwang, S.W., Yeo, H., Choi, I.G., Kwak, H.W. 2022. Highly persistent lignocellulosic fibers for effective cationic dye pollutant removal. ACS Applied Polymer Materials 4(8): 6006-6020. https://doi.org/10.1021/acsapm.2c00837
  15. Kwak, H.W., Kim, M.K., Lee, J.Y., Yun, H., Kim, M.H., Park, Y.H., Lee, K.H. 2015. Preparation of bead-type biosorbent from water-soluble Spirulina platensis extracts for chromium (VI) removal. Algal Research 7: 92-99. https://doi.org/10.1016/j.algal.2014.12.006
  16. Kwak, H.W., Lee, H., Lee, K.H. 2020. Surface-modified spherical lignin particles with superior Cr(VI) removal efficiency. Chemosphere 239: 124733.
  17. Lace, A., Ryan, D., Bowkett, M., Cleary, J. 2019. Chromium monitoring in water by colorimetry using optimised 1,5-diphenylcarbazide method. International Journal of Environmental Research and Public Health 16(10): 1803.
  18. Lee, H., Kim, S., Park, M.J. 2021. Specific surface area characteristic analysis of porous carbon prepared from lignin-polyacrylonitrile copolymer by activation conditions. Journal of the Korean Wood Science and Technology 49(4): 299-314. https://doi.org/10.5658/WOOD.2021.49.4.299
  19. Li, Y., Zhu, H., Zhang, C., Cheng, M., He, H. 2018. PEI-grafted magnetic cellulose for Cr(VI) removal from aqueous solution. Cellulose 25: 4757-4769. https://doi.org/10.1007/s10570-018-1868-2
  20. Ma, H., Li, T., Wu, S., Zhang, X. 2020. Effect of the interaction of phenolic hydroxyl with the benzene rings on lignin pyrolysis. Bioresource Technology 309: 123351.
  21. Min, C.H., Um, B.H. 2017. Effect of process parameters and kraft lignin additive on the mechanical properties of miscanthus pellets. Journal of the Korean Wood Science and Technology 45(6): 703-719. https://doi.org/10.5658/WOOD.2017.45.6.703
  22. Park, S.Y., Choi, J.H., Cho, S.M., Choi, J.W., Choi, I.G. 2020. Structural analysis of open-column fractionation of peracetic acid-treated kraft lignin. Journal of the Korean Wood Science and Technology 48(6): 769-779. https://doi.org/10.5658/WOOD.2020.48.6.769
  23. Pawale, S., Kalia, K., Alshammari, S., Cronin, D., Zhang, X., Ameli, A. 2022. Deep eutectic solvent-extracted lignin as an efficient additive for entirely biobased polylactic acid composites. ACS Applied Polymer Materials 4(8): 5861-5871. https://doi.org/10.1021/acsapm.2c00742
  24. Sangian, H.F., Sehe, M.R., Tamuntuan, G.H., Zulnazri, Z. 2018. Utilization of saline solutions in the modification of lignocellulose from Champaca wood. Journal of the Korean Wood Science and Technology 46(4): 368-379. https://doi.org/10.5658/WOOD.2018.46.4.368
  25. Singh, A., Kumar, R., Maurya, A., Chowdhary, P., Raj, A. 2022. Isolation of functional ligninolytic Bacillus aryabhattai from paper mill sludge and its lignin degradation potential. Biotechnology Reports 35: e00755.
  26. Watumlawar, E.C., Park, B.D. 2023. Effects of precipitation pH of black liquor on characteristics of precipitated and acetone-fractionated kraft lignin. Journal of the Korean Wood Science and Technology 51(1): 38-48. https://doi.org/10.5658/WOOD.2023.51.1.38
  27. Wei, Y., Salih, K.A.M., Hamza, M.F., Fujita, T., Rodriguez-Castellon, E., Guibal, E. 2021. Synthesis of a new phosphonate-based sorbent and characterization of its interactions with lanthanum (III) and terbium (III). Polymers 13(9): 1513.
  28. Zhu, H., Zhang, M., Cai, S., Cai, Y., Wang, P., Bao, S., Zou, M., Du, M. 2014. In situ growth of Rh nanoparticles with controlled sizes and dispersions on the cross-linked PVA-PEI nanofibers and their electrocatalytic properties towards H2O2. RSC Advances 4(2): 794-804. https://doi.org/10.1039/C3RA44834G
  29. Zhuang, Y., Yu, F., Chen, H., Zheng, J., Ma, J., Chen, J. 2016. Alginate/graphene double-network nanocomposite hydrogel beads with low-swelling, enhanced mechanical properties, and enhanced adsorption capacity. Journal of Materials Chemistry A 4(28): 10885-10892. https://doi.org/10.1039/C6TA02738E