[1] S.J. Kim, B.H. Um, Comparison of hemicellulose extracts from two pulping woodchips with green liquor followed by scale-up pre-hemicellulose extraction, Appl. Biochem. Biotechnol. 175 (5) (2015) 2501-2515. [2] M. Sharma, C.V.T. Mendes, P. Alves, L.M. Gando-Ferreira, Optimization of hemicellulose recovery from black liquor using ZnO/PES ultrafiltration membranes in crossflow mode, J. Ind. Eng. Chem. 114 (2022) 254-262. [3] O. Wallberg, M. Linde, A.S. Jonsson, Extraction of lignin and hemicelluloses from kraft black liquor, Desalination 199 (1-3) (2006) 413-414. [4] H. Ren, S. Omori, Comparison of hemicelluloses isolated from soda cooking black liquor with commercial and bacterial xylan, Cellulose Chemistry and Technology 48(7-8) (2014) 675-681. [5] A. Van Heiningen, Converting a kraft pulp mill into an integrated forest biorefinery, Pulp and Paper Canada 107(6) (2006) 38-43. [6] H. Zabed, J.N. Sahu, A.N. Boyce, G. Faruq, Fuel ethanol production from lignocellulosic biomass: An overview on feedstocks and technological approaches, Renew. Sustain. Energy Rev. 66 (2016) 751-774. [7] S. Wang, W. Gao, Y. Wang, T. Song, H. Qi, Z. Xiang, Emulsifying properties of naturally acetylated xylans and their application in lutein delivery emulsion, Carbohydr Polym 296 (2022) 119927. [PubMed]. [8] X.Q. Wang, C. Duan, X.M. Feng, X.Y. Qin, W.L. Wang, J. Wang, Y.J. Xu, Y.H. Ni, Combining phosphotungstic acid pretreatment with mild alkaline extraction for selective separation of hemicelluloses from hardwood kraft pulp, Sep. Purif. Technol. 266 (2021) 118562. [9] W. Wafa Al-Dajani, U.W. Tschirner, T. Jensen, Pre-extraction of hemicelluloses and subsequent kraft pulping Part II: acid- and autohydrolysis, Sept. 2009 8 (9) (2009) 30-37. [10] J. Pere, E. Paakkonen, Y. Ji, E. Retulainen, Influence of the hemicellulose content on the fiber properties, strength, and formability of handsheets, BioResources 14 (1) (2018) 251-263. [11] W. Tang, X.X. Wu, C.X. Huang, Z. Ling, C.H. Lai, Q. Yong, Revealing migration discipline of lignin during producing fermentable sugars from wheat straw through autohydrolysis, Ind. Crops Prod. 171 (2021) 113849. [12] H. Mao, J.M. Genco, S.H. Yoon, A. van Heiningen, H. Pendse, Technical economic evaluation of a hardwood biorefinery using the “near-neutral” hemicellulose pre-extraction process, J. Biobased Mater. Bioenergy 2 (2) (2008) 177-185. [13] W. Wafa Al-Dajani, U.W. Tschirner, Pre-extraction of hemicelluloses and subsequent kraft pulpingPart I: alkaline extraction, TAPPI J. 7 (6) (2008) 3-8. [14] L. Testova, A. Roselli, L. Costabel, K. Kovasin, M. Tenkanen, H. Sixta, Combined production of polymeric birch xylan and paper pulp by alkaline pre-extraction followed by alkaline cooking, Ind. Eng. Chem. Res. 53 (19) (2014) 8302-8310. [15] J. Helmerius, J.V. von Walter, U. Rova, K.A. Berglund, D.B. Hodge, Impact of hemicellulose pre-extraction for bioconversion on birch Kraft pulp properties, Bioresour Technol 101 (15) (2010) 5996-6005. [16] M. He, T. Song, H. Qi, Z. Xiang, An environment-friendly dip-catalyst with xylan-based catalytic paper coatings, Carbohydr Polym 275 (2022) 118707. [17] S.Y. Wang, T. Song, H.S. Qi, Z.Y. Xiang, Exceeding high concentration limits of aqueous dispersion of carbon nanotubes assisted by nanoscale xylan hydrate crystals, Chem. Eng. J. 419 (2021) 129602. [18] S.Y. Wang, Z.Y. Xiang, Highly stable Pickering emulsions with xylan hydrate nanocrystals, Nanomaterials 11 (10) (2021) 2558. [19] A.C. Puițel, G.D. Suditu, E.N. Dragoi, M. Danu, G.L. Ailiesei, C.D. Balan, D.L. Chicet, M.T. Nechita, Optimization of alkaline extraction of xylan-based hemicelluloses from wheat straws: Effects of microwave, ultrasound, and freeze-thaw cycles, Polym. Basel 15 (4) (2023) 1038. [20] D.Y. Min, Q.Z. Li, H. Jameel, V. Chiang, H.M. Chang, Comparison of pretreatment protocols for cellulase-mediated saccharification of wood derived from transgenic low-xylan lines of cottonwood (P. trichocarpa), Biomass Bioenergy 35 (8) (2011) 3514-3521. [21] C.J. Chen, J.J. Luo, W. Qin, Z.F. Tong, Elemental analysis, chemical composition, cellulose crystallinity, and FT-IR spectra of Toona sinensis wood, Monatsh. Fur Chem. Chem. Mon. 145 (1) (2014) 175-185. [22] A. Nath, P.K. Chattopadhyay, Optimization of oven toasting for improving crispness and other quality attributes of ready to eat potato-soy snack using response surface methodology, J. Food Eng. 80 (4) (2007) 1282-1292. [23] M. Zanuttini, V. Marzocchi, Alkaline chemi-mechanical pulp from poplar. relationship between chemical state, swelling and papermaking properties, Holzforschung 57 (5) (2003) 489-495. [24] Q. Liu, H. Fan, H. Mou, J. Liu, J. Huang, X. Dong, H. Song, Preparation and characterization of xylan by an efficient approach with mechanical pretreatments, Industrial Crops and Products 165 (7) (2021)113420. [25] S. Azhar, G. Henriksson, H. Theliander, M.E. Lindstrom, Extraction of hemicelluloses from fiberized spruce wood, Carbohydr Polym 117 (2015) 19-24. [26] A.C. Albertsson, U. Edlund, I.K. Varma, Synthesis, chemistry and properties of hemicelluloses, Biopolymers-New materials for sustainable films and coatings, John Wiley & Sons, Ltd (2011) 133-150. [27] W.H. Geng, R. Narron, X. Jiang, J.J. Pawlak, H.M. Chang, S. Park, H. Jameel, R.A. Venditti, The influence of lignin content and structure on hemicellulose alkaline extraction for non-wood and hardwood lignocellulosic biomass, Cellulose 26 (5) (2019) 3219-3230. [28] W. Fatriasari, R. Raniya, M. Oktaviani, E. Hermiati, The improvement of sugar and bioethanol production of oil palm empty fruit bunches (elaeis guineensis jacq) through microwave-assisted maleic acid pretreatment, BioResources 13 (2) (2018)4378-4403. [29] C. Wang, J. Yang, J. Wen, J. Bian, M. Li, F. Peng, R. Sun, Structure and distribution changes of Eucalyptus hemicelluloses during hydrothermal and alkaline pretreatments, Int J Biol Macromol 133 (2019) 514-521. [30] D. Lachenal, Kraft pulping, lignocellulosic fibers and wood handbook, Renewable Materials for Today’s Environment, John Wiley & Sons, Ltd, New York, 2016. [31] M.Q. Zhang, Q.L. Li, A. Kazachenko, Z.Y. Xiang, Crystallization and water cast film formability of birchwood xylans, Cellulose 30 (7) (2023) 4623-4638. [32] X. Lan, S. Fu, J. Song, S. Leu, J. Shen, Y. Kong, S. Kang, X. Yuan, H. Liu, Structural changes of hemicellulose during pulping process and its interaction with nanocellulose, Int J Biol Macromol 255 (2024) 127772. [33] Z. Yuan, N.S. Kapu, R. Beatson, X.F. Chang, D.M. Martinez, Effect of alkaline pre-extraction of hemicelluloses and silica on kraft pulping of bamboo (Neosinocalamus affinis Keng), Industrial Crops and Products 91 (2016) 66-75. [34] A. Jun, U.W. Tschirner, Z. Tauer, Hemicellulose extraction from aspen chips prior to kraft pulping utilizing kraft white liquor, Biomass Bioenergy 37 (2012) 229-236. [35] J. Wan, Y. Wang, Q. Xiao, Effects of hemicellulose removal on cellulose fiber structure and recycling characteristics of eucalyptus pulp, Bioresour Technol 101 (12) (2010) 4577-4583. [36] S.H. Yoon, H.T. Cullinan, G.A. Krishnagopalan, Reductive modification of alkaline pulping of southern pine, integrated with hydrothermal pre-extraction of hemicelluloses, Ind. Eng. Chem. Res. 49 (13) (2010) 5969-5976. [37] T. Krahl, H. Fuhrmann, S. Dimassi, Ice cream. Handbook on Natural Pigments in Food and Beverages. Amsterdam: Elsevier, (2016) 197-207. [38] N. Gooran, B.K. Yoon, J.A. Jackman, Supported lipid bilayer platform for characterizing the membrane-disruptive behaviors of triton X-100 and potential detergent replacements, Int J Mol Sci 23 (2) (2022) 869. [39] P. Ferguson, R. Cross, G. Schad, Application of SFC for the characterization of formulated drug products. Separation Science and Technology. Amsterdam: Elsevier, (2022) 221-255. [40] Z.H. Hu, Z.Y. Xiang, L.L. Wang, Y.S. Liu, P. Wang, Homogeneous esterification of glucuronoxylans and investigation of their emulsifying properties, Cellulose 30 (11) (2023) 6855-6867. |