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·940· 精细化工 FINE CHEMICALS 第 40 卷
[29] BOERIU C G, BRAVO D, GOSSELINK R J A, et al. its colloids[J]. Holzforschung, 2019, 73(5): 485-491.
Characterisation of structure-dependent functional properties of [47] WANG J Y, QIAN Y, LI L B, et al. Atomic force microscopy and
lignin with infrared spectroscopy[J]. Industrial Crops & Products, molecular dynamics simulations for study of lignin solution
2004, 20(2): 205-218. self-assembly mechanisms in organic-aqueous solvent mixtures[J].
[30] LAUBERTE L, FABRE G, PONOMARENKO J, et al. Lignin ChemSusChem, 2020, 13(17): 4420-4427.
modification supported by DFT-based theoretical study as a way to [48] KAUR R, THAKUR N S, CHANDNA S, et al. Development of
produce competitive natural antioxidants[J]. Molecules, 2019, 24(9): agri-biomass based lignin derived zinc oxide nanocomposites as
1794. promising UV protectant-cum-antimicrobial agents[J]. Journal of
[31] ZHENG L M, LU G, PEI W H, et al. Understanding the relationship Materials Chemistry B, 2020, 8(2): 260-267.
between the structural properties of lignin and their biological [49] JIANG H H (江昊翰), LI S M (李双明), YU S S (于三三). Research
activities[J]. International Journal of Biological Macromolecules, progress on lignin depolymerization and liquid phase catalytic
2021, 190: 291-300. degradation[J]. Biomass Chemical Engineering (生物质化学工程).
[32] AMINZADEH S, LAUBERTS M, DOBELE G, et al. Membrane 2022, 56(4): 67-76.
filtration of kraft lignin: Structural charactristics and antioxidant [50] AUFISCHER G, SUSS R, KAMM B, et al. Depolymerisation of
activity of the low-molecular-weight fraction[J]. Industrial Crops & kraft lignin to obtain high value-added products: Antioxidants and
Products, 2018, 112: 200-209. UV absorbers[J]. Holzforschung, 2022, 76 (9): 845-852.
[33] SONG Y L, JI H R, SHI X Y, et al. Successive organic solvent [51] YANG X H, LI Z, LI L, et al. Depolymerization and demethylation
fractionation and structural characterization of lignin extracted from of kraft lignin in molten salt hydrate and applications as an
hybrid poplar by deep eutectic solvent for improving the antioxidant and metal ion scavenger[J]. Journal of Agricultural and
homogeneity and isolating narrow fractions[J]. Renewable Energy, Food Chemistry, 2021, 69 (45): 13568-13577.
2020, 157: 1025-1034. [52] SANG D Y, TU X D, TIAN J, et al. Anchimerically assisted
[34] WEI X X, LIU Y, LUO Y D, et al. Effect of organosolv extraction cleavage of aryl methyl ethers by aluminum chloride-sodium iodide
on the structure and antioxidant activity of eucalyptus kraft lignin[J]. in acetonitrile[J]. ChemistrySelect, 2018, 3(35): 10103-10107.
International Journal of Biological Macromolecules, 2021, 187: [53] WANG H, EBERHARDT T L, WANG C P, et al. Demethylation of
462-470. alkali lignin with halogen acids and its application to phenolic
[35] XIAO L F, LIU W F, HUANG J H, et al. Study on the antioxidant resins[J]. Polymers, 2019, 11(11): 1771.
activity of lignin and its application performance in SBS [54] ZHAO W T, WEI C L, CUI Y D, et al. Efficient demethylation of
elastomer[J]. Industrial & Rngineering Chemistry Research, 2021, lignin for polyphenol production enabled by low-cost bifunctional
60(1): 790-797. protic ionic liquid under mild and halogen-free conditions[J].
[36] WANG J L (王江丽), XUE M (薛敏), ZHANG C K (赵承科), et al. Chemical Engineering Journal, 2022, 443: 136486.
Influences of lignin fractionation on its utilization[J]. CIESC Journal [55] VENKATESAGOWDA B, DEKKER R F H. Enzymatic
(化工学报), 2022, 73(5): 1894-1907. demethylation of Kraft lignin for lignin-based phenol-formaldehyde
[37] WANG G H, CHEN H Z. Fractionation and characterization of resin applications[J]. Biomass Conversion and Biorefinery, 2020, 10:
lignin from steam-exploded corn stalk by sequential dissolution in 203-225.
ethanol-water solvent[J]. Separation and Purification Technology, [56] JIANG X, LIU J, DU X Y, et al. Phenolation to improve lignin
2013, 120: 402-409. reactivity toward thermosets application[J]. ACS Sustainable
[38] MENG X Z, PARIKH A, SEEMALA B, et al. Characterization of Chemistry & Engineering, 2018, 6(4): 13349-13357.
fractional cuts of co-solvent enhanced lignocellulosic fractionation [57] YANG W J, DING H, QI G H, et al. Enhancing the radical
lignin isolated by sequential precipitation[J]. Bioresource scavenging activity and UV resistance of lignin nanoparticles via
Technology, 2019, 272: 202-208. surface mannich amination toward a biobased antioxidant[J].
[39] SADEGHIFAR H, WELLS T, LE R K, et al. Fractionation of Biomacromolecules, 2021, 22(6): 2693-2701.
organosolv lignin using acetone: Water and properties of the obtained [58] QIAN Y, QIU X Q, ZHU S P. Lignin: A nature-inspired sun blocker
fractions[J]. ACS Sustainable Chemistry & Engineering, 2017, 5(1): for broad-spectrum sunscreens[J]. Green Chemistry, 2015, 17(1):
580-587. 320-324.
[40] XU Y H, LI X Y, LI M F, et al. Acetone fractionation of [59] LI Y (李莹). Construction of chemical sunscreen/lignin microcapsules
heterogeneous tetrahydrofurfuryl alcohol lignin to improve its and their applied fundamental research[D]. Guangzhou: South China
homogeneity and functionality[J]. Journal of Materials Research and University of Technology (华南理工大学), 2018.
Technology, 2021, 10(51): 632-642. [60] IBRAHIM M N M, IQBAL A, SHEN C C, et al. Synthesis of lignin
[41] MATOS M, CLARO F C, LIMA T A M, et al. Acetone: Water based composites of TiO 2 for potential application as radical
fractionation of pyrolytic lignin improves its antioxidant and scavengers in sunscreen formulation[J]. BMC Chemistry, 2019, 13: 17.
antibacterial activity[J]. Journal of Analytical and Applied Pyrolysis, [61] LI Y Y, YANG D J, LU S, et al. Encapsulating TiO 2 in lignin-based
2021, 156: 105175. colloidal spheres for high sunscreen performance and weakphotocatalytic
[42] FREITAS F M C, CERQUEIRA M A, GONCALVES C, et al. activity[J]. ACS Sustainable Chemistry&Engineering, 2019, 7(6):
Green synthesis of lignin nano- and micro-particles: Physicochemical 6234-6242.
characterization, bioactive properties and cytotoxicity assessment[J]. [62] CHEN K, ZHOU X Y, WANG D, et al. Synthesis and
International Journal of Biological Macromolecules, 2020, 163: characterization of a broad-spectrum TiO 2@lignin UV-protection
1798-1809. agent with high antioxidant and emulsifying activity[J]. International
[43] YANG W J, FORTUNAT E, GAO D Q, et al. Valorization of acid Journal of Biological Macromolecules, 2022, 218: 33-43.
isolated high yield lignin nanoparticles as innovative antioxidant/ [63] HE M Y (何明宇). Study on the preparation of polypropylene based
antimicrobial organic materials[J]. ACS Sustainable Chemistry & cotton stalk lignin composite materials and their anti-oxidation
Engineering, 2018, 6(3): 3502-3514. performance[D]. Urumqi: Xinjiang University (新疆大学), 2021.
[44] ZHANG X, YANG M K, YUAN Q P, et al. Controlled preparation [64] HU D L, GU X Y, WANG G L, et al. Performance and mechanism
of corncob lignin nanoparticles and their size-dependent antioxidant of lignin and quercetin as bio-based anti-aging agents for asphalt
properties: Toward high value utilization of lignin[J]. ACS binder: A combined experimental and ab initio study[J]. Journal of
Sustainable Chemistry & Engineering, 2019, 7(20): 17166-17174. Molecular Liquids, 2022, 359: 119310.
[45] LU Q, ZHU M H, ZU Y G, et al. Comparative antioxidant activity of [65] INTAPUN J, RUNGRUANG T, SUNISA S, et al. The
nanoscale lignin prepared by a supercritical antisolvent (SAS) characteristics of natural rubber composites with Klason lignin as a
process with non-nanoscale lignin[J]. Food Chemistry, 2012, 135(1): green reinforcing filler: Thermal stability, mechanical and dynamical
63-67. properties[J]. Polymers, 2021, 13(7): 1109.
[46] TAN S Y, LIU D, QIAN Y, et al. Towards better UV-blocking and
antioxidant performance of varnish via additives based on lignin and (下转第 988 页)