Lignin: Comparison
Please note this is a comparison between Version 2 by Catherine Yang and Version 1 by Lucian Lucia.

Lignin is an extremely abundant substance that has a chemical functionality that endows it with the necessary properties to be an attractive platform material for the new millennium. We must continue to explore and exploit its potentiality as a stand-alone material, raw feedstock for refining to chemicals, polymeric filler, and co-composite material. This review highlights hardwood-derived lignin, a little explored form of lignin, as a promising platform material.

  • lignin, hardwood, feedstock, platform material
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References

  1. Duval, A.; Lawoko, M. A review on lignin-based polymeric, micro- and nano-structured materials. React. Funct. Polym. 2014, 85, 78–96.
  2. Kadla, J.F.; Kubo, S. Miscibility and Hydrogen Bonding in Blends of Poly (ethylene oxide) and Kraft Lignin. Macromolecules 2003, 7803–7811.
  3. Wang, H.; Pu, Y.; Ragauskas, A.; Yang, B. From lignin to valuable products–strategies, challenges, and prospects. Bioresour. Technol. 2019, 271, 449–461.
  4. Rinaldi, R.; Jastrzebski, R.; Clough, M.T.; Ralph, J.; Kennema, M.; Bruijnincx, P.C.A.; Weckhuysen, B.M. Paving the Way for Lignin Valorisation: Recent Advances in Bioengineering, Biorefining and Catalysis. Angew. Chem. Int. Ed. 2016, 55, 8164–8215.
  5. Wallmo, H.; Littorin, A.; Karlsson, H.; Lindholm, K.; Stern, R.; Christiansen, G. The Evolution of LignoBoost Technology and the Lignin BioProducts Market-Part 2. In Proceedings of the IBBC International Bioenergy & Bioproducts Conference, Jacksonville, FL, USA, 28–30 September 2016.
  6. Dessbesell, L.; Paleologou, M.; Leitch, M.; Pulkki, R.; Xu, C. (Charles) Global lignin supply overview and kraft lignin potential as an alternative for petroleum-based polymers. Renew. Sustain. Energy Rev. 2020, 123, 109768.
  7. Kouisni, L.; Gagné, A.; Maki, K.; Holt-Hindle, P.; Paleologou, M. LignoForce System for the Recovery of Lignin from Black Liquor: Feedstock Options, Odor Profile, and Product Characterization. ACS Sustain. Chem. Eng. 2016, 4, 5152–5159.
  8. Fatehi, P.; Chen, J. Extraction of Technical Lignins from Pulping Spent Liquors, Challenges and Opportunities. In Production of Biofuels and Chemicals from Lignin; Springer: Singapore, 2016; pp. 35–54. ISBN 978-981-10-1964-7.
  9. Li, Y.; Shuai, L.; Kim, H.; Motagamwala, A.H.; Mobley, J.K.; Yue, F.; Tobimatsu, Y.; Havkin-Frenkel, D.; Chen, F.; Dixon, R.A.; et al. An “ideal lignin” facilitates full biomass utilization. Sci. Adv. 2018, 4, eaau2968.
  10. Yinghuai, Z.; Yuanting, K.T.; Hosmane, N.S. Applications of Ionic Liquids in Lignin Chemistry. In Ionic Liquids—New Aspects for the Future; IntechOpen: London, UK, 2012.
  11. Peng, J.; Yang, G.; Qi, L.; Liu, J.; Li, F.; Chen, J.; Lucia, L. Enhancement of Delignification by Ionic Liquids Pretreatment and Modification of Hardwood Kraft Pulp in Preparation for Bleaching. BioResources 2020, 15, 6299–6308.
  12. Zakzeski, J.; Bruijnincx, P.C.A.; Jongerius, A.L.; Weckhuysen, B.M. The catalytic valorization of lignin for the production of renewable chemicals. Chem. Rev. 2010, 110, 3552–3599.
  13. Mora-Pale, M.; Meli, L.; Doherty, T.V.; Linhardt, R.J.; Dordick, J.S. Room temperature ionic liquids as emerging solvents for the pretreatment of lignocellulosic biomass. Biotechnol. Bioeng. 2011, 108, 1229–1245.
  14. Malaeke, H.; Housaindokht, M.R.; Monhemi, H.; Izadyar, M. Deep eutectic solvent as an efficient molecular liquid for lignin solubilization and wood delignification. J. Mol. Liq. 2018, 263, 193–199.
  15. Zhang, Q.; De Oliveira Vigier, K.; Royer, S.; Jérôme, F. Deep eutectic solvents: Syntheses, properties and applications. Chem. Soc. Rev. 2012, 41, 7108–7146.
  16. Domínguez de María, P.; Maugeri, Z. Ionic liquids in biotransformations: From proof-of-concept to emerging deep-eutectic-solvents. Curr. Opin. Chem. Biol. 2011, 15, 220–225.
  17. Jelonek, Z.; Drobniak, A.; Mastalerz, M.; Jelonek, I. Assessing pellet fuels quality: A novel application for reflected light microscopy. Int. J. Coal Geol. 2020, 222, 103433.
  18. Boschetti, W.T.N.; Carvalho, A.M.M.L.; Carneiro, A.D.C.O.; Santos, L.C.; Poyares, L.D.B.Q. Potential of kraft lignin as an additive in briquette production. Nord. Pulp Pap. Res. J. 2019.
  19. Pereira, B.L.C.; de Cássia Oliveira Carneiro, A.; Carvalho, A.M.M.L.; Vital, B.R.; Oliveira, A.C.; Canal, W.D. Influência da adição de lignina kraft nas propriedades de pellets de eucalipto. Floresta 2016, 46, 235–242.
  20. Österberg, M.; Sipponen, M.H.; Mattos, B.D.; Rojas, O.J. Spherical lignin particles: A review on their sustainability and applications. Green Chem. 2020, 22, 2712–2733.
  21. Konduri, M.K.; Kong, F.; Fatehi, P. Production of carboxymethylated lignin and its application as a dispersant. Eur. Polym. J. 2015, 70, 371–383.
  22. Konduri, M.K.R.; Fatehi, P. Production of water-soluble hardwood kraft lignin via sulfomethylation using formaldehyde and sodium sulfite. ACS Sustain. Chem. Eng. 2015, 3, 1172–1182.
  23. Mohan, D.; Pittman, C.U.; Steele, P.H. Single, binary and multi-component adsorption of copper and cadmium from aqueous solutions on Kraft lignin-a biosorbent. J. Colloid Interface Sci. 2006, 297, 489–504.
  24. Ge, Y.; Li, Z. Application of Lignin and Its Derivatives in Adsorption of Heavy Metal Ions in Water: A Review. ACS Sustain. Chem. Eng. 2018, 6, 7181–7192.
  25. Zerpa, A.; Pakzad, L.; Fatehi, P. Hardwood Kraft Lignin-Based Hydrogels: Production and Performance. ACS Omega 2018, 3, 8233–8242.
  26. Gellerstedt, G.; Sjöholm, E.; Brodin, I. The Wood-Based Biorefinery: A Source of carbon fiber? Open Agric. J. 2010, 3, 119–124.
  27. Fang, W.; Yang, S.; Wang, X.-L.; Yuan, T.-Q.; Sun, R.-C. Manufacture and application of lignin-based carbon fibers (LCFs) and lignin-based carbon nanofibers (LCNFs). Green Chem. 2017, 19, 1794–1827.
  28. Ragauskas, A.J.; Beckham, G.T.; Biddy, M.J.; Chandra, R.; Chen, F.; Davis, M.F.; Davison, B.H.; Dixon, R.A.; Gilna, P.; Keller, M.; et al. Lignin valorization: Improving lignin processing in the biorefinery. Science 2014, 344.
  29. Li, T.; Takkellapati, S. The current and emerging sources of technical lignins and their applications. Biofuels Bioprod. Biorefin. 2018, 12, 756–787.
  30. Baker, D.A.; Rials, T.G. Recent advances in low-cost carbon fiber manufacture from lignin. J. Appl. Polym. Sci. 2013, 130, 713–728.
  31. Kadla, J.F.; Kubo, S.; Venditti, R.A.; Gilbert, R.D.; Compere, A.L.; Griffith, W. Lignin-based carbon fibers for composite fiber applications. Carbon N. Y. 2002, 40, 2913–2920.
  32. Nordström, Y.; Joffe, R.; Sjöholm, E. Mechanical characterization and application of Weibull statistics to the strength of softwood lignin-based carbon fibers. J. Appl. Polym. Sci. 2013, 130, 3689–3697.
  33. Kubo, S.; Kadla, J.F. Lignin-based carbon fibers: Effect of synthetic polymer blending on fiber properties. J. Polym. Environ. 2005, 13, 97–105.
  34. Maradur, S.P.; Kim, C.H.; Kim, S.Y.; Kim, B.H.; Kim, W.C.; Yang, K.S. Preparation of carbon fibers from a lignin copolymer with polyacrylonitrile. Synth. Met. 2012, 162, 453–459.
  35. Brodin, I.; Ernstsson, M.; Gellerstedt, G.; Sjöholm, E. Oxidative stabilisation of kraft lignin for carbon fibre production. Holzforschung 2012, 66, 141–147.
  36. Kubo, S.; Yoshida, T.; Kadla, J.F. Surface porosity of lignin/PP blend carbon fibers. J. Wood Chem. Technol. 2007, 27, 257–271.
  37. Pakkang, N.; Kumar, M.; Taira, S.; Koda, K.; Shigetomi, K.; Uraki, Y. Preparation of kraft lignin-based activated carbon fiber electrodes for electric double layer capacitors using an ionic liquid electrolyte. Holzforschung 2020, 74, 577–588.
  38. da Silva, S.H.; Gordobil, O.; Labidi, J. Organic acids as a greener alternative for the precipitation of hardwood kraft lignins from the industrial black liquor. Int. J. Biol. Macromol. 2020, 142, 583–591.
  39. Ye, D.; Li, S.; Lu, X.; Zhang, X.; Rojas, O.J. Antioxidant and Thermal Stabilization of Polypropylene by Addition of Butylated Lignin at Low Loadings. ACS Sustain. Chem. Eng. 2016, 4, 5248–5257.
  40. dos Santos, P.S.; Erdocia, X.; Gatto, D.A.; Labidi, J. Characterisation of Kraft lignin separated by gradient acid precipitation. Ind. Crops Prod. 2014, 55, 149–154.
  41. Widsten, P.; Tamminen, T. Natural Sunscreens Based on Nanoparticles of Modi fi ed Kraft Lignin (CatLignin). ACS Omega 2020.
  42. Cheng, C.; Wang, J.; Shen, D.; Xue, J.; Guan, S.; Gu, S.; Luo, K.H. Catalytic oxidation of lignin in solvent systems for production of renewable chemicals: A review. Polymers (Basel) 2017, 9, 240.
  43. Ponnusamy, V.K.; Nguyen, D.D.; Dharmaraja, J.; Shobana, S.; Banu, J.R.; Saratale, R.G.; Chang, S.W.; Kumar, G. A review on lignin structure, pretreatments, fermentation reactions and biorefinery potential. Bioresour. Technol. 2019, 271, 462–472.
  44. Schutyser, W.; Renders, T.; Van den Bosch, S.; Koelewijn, S.-F.; Beckham, G.T.; Sels, B.F. Chemicals from lignin: An interplay of lignocellulose fractionation, depolymerisation, and upgrading. Chem. Soc. Rev. 2018, 47, 852–908.
  45. Pinto, P.C.R.; Costa, C.E.; Rodrigues, A.E. Oxidation of lignin from eucalyptus globulus pulping liquors to produce syringaldehyde and vanillin. Ind. Eng. Chem. Res. 2013, 52, 4421–4428.
  46. Villar, J.C.; Caperos, A.; García-Ochoa, F. Oxidation of hardwood kraft-lignin to phenolic derivatives with oxygen as oxidant. Wood Sci. Technol. 2001, 35, 245–255.
  47. Fache, M.; Boutevin, B.; Caillol, S. Vanillin Production from Lignin and Its Use as a Renewable Chemical. ACS Sustain. Chem. Eng. 2016, 4, 35–46.
  48. Laurichesse, S.; Avérous, L. Chemical modification of lignins: Towards biobased polymers. Prog. Polym. Sci. 2014, 39, 1266–1290.
  49. Kun, D.; Pukánszky, B. Polymer/lignin blends: Interactions, properties, applications. Eur. Polym. J. 2017, 93, 618–641.
  50. Kadla, J.F.; Kubo, S. Lignin-based polymer blends: Analysis of intermolecular interactions in lignin-synthetic polymer blends. Compos. Part A Appl. Sci. Manuf. 2004, 35, 395–400.
  51. Saito, T.; Brown, R.H.; Hunt, M.A.; Pickel, D.L.; Pickel, J.M.; Messman, J.M.; Baker, F.S.; Keller, M.; Naskar, A.K. Turning renewable resources into value-added polymer: Development of lignin-based thermoplastic. Green Chem. 2012, 14, 3295–3303.
  52. Torrezan, T.; Agnelli, J.A.M.; Bettini, S.H.P. Polymeric Olefinic Composition, Lignin Use and Object. U.S. Patent Application No. 16/324,372, 6 June 2019.
  53. Torrezan, T. Avaliação do comportamento reológico, térmico e mecânico de misturas de PBAT com elevados teores de lignina. Master’s Thesis, Universidade Federal de São Carlos, São Paulo, Brazil, 2019; 106.
  54. Kubo, S.; Kadla, J.F. The formation of strong intermolecular interactions in immiscible blends of poly(vinyl alcohol) (PVA) and lignin. Biomacromolecules 2003, 4, 561–567.
  55. Pan, X.; Saddler, J.N. Effect of replacing polyol by organosolv and kraft lignin on the property and structure of rigid polyurethane foam. Biotechnol. Biofuels 2013, 6, 1–10.
  56. Graça, M.P.F.; Rudnitskaya, A.; Fernando, F.A.; Evtuguin, D.V.; Maria, M.T.; Joaõ, J.A.; Costa, L.C. Electrochemical impedance study of the lignin-derived conducting polymer. Electrochim. Acta 2012, 76, 69–76.
  57. Gonçalves, S.S.L.; Rudnitskaya, A.; Sales, A.J.M.; Costa, L.C.C.; Evtuguin, D.V. Nanocomposite Polymeric Materials Based on Eucalyptus Lignoboost® Kraft Lignin for Liquid Sensing Applications. Materials (Basel) 2020, 13, 1637.
  58. Rudnitskaya, A.; Evtuguin, D.V.; Costa, L.C.; Pedro Graça, M.P.; Fernandes, A.J.S.; Rosario Correia, M.; Teresa Gomes, M.T.; Oliveira, J.A.B.P. Potentiometric chemical sensors from lignin-poly(propylene oxide) copolymers doped by carbon nanotubes. Analyst 2013, 138, 501–508.
  59. Zhao, Y.; Tagami, A.; Dobele, G.; Lindström, M.E.; Sevastyanova, O. The impact of lignin structural diversity on performance of cellulose nanofiber (CNF)-starch composite films. Polymers (Basel) 2019, 11, 538.
  60. Dehne, L.; Babarro, C.V.; Saake, B.; Schwarz, K.U. Influence of lignin source and esterification on properties of lignin-polyethylene blends. Ind. Crops Prod. 2016, 86, 320–328.
  61. Kim, Y.S.; Youe, W.J.; Kim, S.J.; Lee, O.K.; Lee, S.S. Preparation of a Thermoresponsive Lignin-Based Biomaterial through Atom Transfer Radical Polymerization. J. Wood Chem. Technol. 2010, 35, 251–259.
  62. Webb, C.D.; Sanford, W.M.; McCall, A.A. Acrylonitrile Butadiene Styrene Copolymer/Lignin Blends. U.S. Patent Application No. 16/663,497, 30 April 2020.
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