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第 1 期 赵文靖,等: 生物质阻燃涂层在涤纶纺织品上的研究进展 ·73·
[22] PENG S, WANG Y C, LAN Y R, et al. Rational design of multif- 2018, 119: 1083-1089.
unctional superoleophobic/superhydrophilic, photocatalytic, and fire- [41] WANG Y F (王雨霏). The flammability of surface coated polyester
retardant polyethylene terephthalate fabrics through layer-by-layer fabric[D]. Beijing: Beijing University of Chemical Technology (北京
technique[J]. Composites Part B:Engineering, 2020, 200: 240-245. 化工大学), 2020.
[23] LAN Y R, WANG Y C, ZHANG H, et al. A facile approach to [42] PAN Y, LIU L X, WANG X, et al. Hypophosphorous acid cross-
achieve multifunctional polyethylene terephthalate fabrics with linked layer-by-layer assembly of green polyelectrolytes on polyester-
durable superhydrophobicity, photocatalysis and self-quenched flame cotton blend fabrics for durable flame-retardant treatment[J]. Carbohydrate
retardance[J]. New Journal of Chemistry, 2020, 44(33): 14198-14210. polymers, 2018, 201: 1-8.
[24] JIANG Z L, WANG C S, FANG S Y, et al. Durable flame-retardant [43] PAN Y, LIU L X, SONG L, et al. Durable flame retardant treatment
and antidroplet finishing of polyester fabrics with flexible polysiloxane of polyethylene terephthalate (PET) fabric with cross-linked layer-
and phytic acid through layer-by-layer assembly and sol-gel process[J]. by-layer assembled coating[J]. Polymer Degradation and Stability,
Journal of Applied Polymer Science, 2018, 135(27): 46414. 2019, 165: 145-152.
[25] FANG Y C, LIU X H, TAO X C. Intumescent flame retardant and [44] XU Y J, QU L Y, LIU Y, et al. An overview of alginates as flame-
anti-dripping of PET fabrics through layer-by-layer assembly of retardant materials:Pyrolysis behaviors, flame retardancy, and
chitosan and ammonium polyphosphate[J]. Progress in Organic applications[J]. Carbohydrate Polymers, 2021, 260: 117827.
Coatings, 2019, 134: 162-168. [45] GUO X (郭寻). Preparation and properties of flame retardant
[26] JORDANOV I, MAGOVAC E, FAHAMI A, et al. Flame retardant cellulose fiber[D]. Tianjin: Tiangong University (天津工业大学), 2021.
polyester fabric from nitrogen-rich low molecular weight additives [46] BRENNER M, WEICHOLD O. Protein hydrolysates from biogenic
within intumescent nanocoating[J]. Polymer Degradation and Stability, waste as an ecological flame retarder and binder for fiberboards[J].
2019, 170: 108998. ACS Omega, 2020, 5(50): 32227-32233.
[27] CAROSIO F, ALONGI J, MALUCELLI G. Layer by layer ammonium [47] COSTES L, LAOUTID F, BROHEZ S, et al. Bio-based flame
polyphosphate-based coatings for flame retardancy of polyester-cotton retardants: When nature meets fire protection[J]. Materials Science &
blends[J]. Carbohydrate Polymers, 2012, 88(4): 1460-1469. Engineering R Reports, 2017, 117: 1-25.
[28] ALONGI J, CAROSIO F, MALUCELLI G. Layer by layer complex [48] MALUCELLI G, BOSCO F, ALONGI J, et al. Biomacromolecules
architectures based on ammonium polyphosphate, chitosan and silica as novel green flame retardant systems for textiles: An overview[J].
on polyester-cotton blends: Flammability and combustion behaviour[J]. RSC Advances, 2014, 4(86): 46024-46039.
Cellulose, 2012, 19(3): 1041-1050. [49] CAROSIO F, DI BLASIO A, CUTTICA F, et al. Flame retardancy of
[29] FANG Y C, LIU X H, FEI W Q. Nacre-mimetic CH/MMT fabrication polyester and polyester-cotton blends treated with caseins[J].
coating on PET fabric for improving anti-dripping performance[J]. Industrial & Engineering Chemistry Research, 2014, 53(10): 3917-
International Journal of Clothing Science and Technology, 2020, 3923.
32(6): 803-812. [50] CHEN Y J (程远佳). Structure and properties of polyester filaments
[30] LEISTNER M, ABU-OGEH A A, ROHMER S C, et al. Water-based modified with superfine wool powder[D]. Wuhan : Wuhan Textile
chitosan/melamine polyphosphate multilayer nanocoating that extinguishes University (武汉纺织大学), 2014.
fire on polyester-cotton fabric[J]. Carbohydrate Polymers, 2015, 130: [51] ZANG W H (臧文慧). Thermal stability and flame retardancy of PET
227-232. fabrics treated with collagen contained combinations[D]. Beijing:
[31] CHEN W (陈威). Flame retardant treatment of dopamine modified Beijing University of Chemical Technology (北京化工大学), 2016.
polyester/cotton blended fabric via electrostatic layer-by-layer self- [52] XU F (徐芳). Study of novel amino acid-based or protein-based
assembly method[D]. Suzhou: Soochow University (苏州大学), 2017. flame retardants containing phosphonate ester and ammonium phosphonate
[32] VERLEE A, MINCKE S, STEVENS C V. Recent developments in groups for cotton fabrics[D]. Chongqing: Southwest University (西
antibacterial and antifungal chitosan and its derivatives[J]. Carbohydrate 南大学), 2020.
Polymers, 2017, 164: 268-283. [53] WANG X, HU Y, SONG L, et al. Flame retardancy and thermal
[33] LIU X, XIAO C M. Formation of self-healable fire-retardant water- degradation of intumescent flame retardant poly(lactic acid)/starch
soluble chitosan/chemically cross-linked polyvinyl alcohol/Cu(Ⅱ) biocomposites[J]. Industrial and Engineering Chemistry Research,
gel[J]. Environmental Technology and Innovation, 2020, 20: 101087. 2011, 50(2): 713-720.
[34] LIU L X, PAN Y, WANG Z, et al. Layer-by-layer assembly of [54] WU K, HU Y, SONG L, et al. Flame retardancy and thermal degradation
hypophosphorous acid-modified chitosan based coating for flame- of intumescent flame retardant starch-based biodegradable composites[J].
retardant polyester-cotton blends[J]. Industrial and Engineering Chemistry Industrial & Engineering Chemistry Research, 2009, 48(6): 3150-
Research, 2017, 56(34): 9429-9436. 3157.
[35] LIU L X (刘龙祥). Study on preparation and performance of flame- [55] AMANI A, MONTAZER M, MAHMOUDIRAD M, et al. Low
retardant and superhydrophobic polyester-cotton fabric[D]. Hefei: starch/corn silk/ZnO as environmentally friendly nanocomposites
University of Science and Technology of China (中国科技大学), 2019. assembling on PET fabrics[J]. International Journal of Biological
[36] BENABBAS R, SANCHEZ-BALLESTER N M, BATAILLE B, et al. Macromolecules, 2020, 170: 780-792.
Development and pharmaceutical performance of a novel co-processed [56] CAROSIO F, CUTTICA F, DI BLASIO A, et al. Layer by layer
excipient of alginic acid and microcrystalline cellulose[J]. Powder assembly of flame retardant thin films on closed cell PET foams:
Technology, 2020, 378: 576-584. Efficiency of ammonium polyphosphate versus DNA[J]. Polymer
[37] ZHANG Z H, MA Z Y, LENG Q, et al. Eco-friendly flame retardant Degradation and Stability, 2015, 113: 189-196.
coating deposited on cotton fabrics from bio-based chitosan, phytic [57] SURYAPRABHA T, SETHURAMAN M G. Fabrication of a
acid and divalent metal ions[J]. International Journal of Biological superhydrophobic and flame-retardant cotton fabric using a DNA-
Macromolecules, 2019, 140: 303-310. based coating[J]. Journal of Materials Science, 2020, 55(26): 11959-
[38] GUI Y G (桂由刚). Research on degradation and stability of 11969.
alginate[D]. Qingdao: Qingdao University (青岛大学), 2019. [58] ALONGI J, MILNES J, MALUCELLI G, et al. Thermal degradation
[39] LIU Z H, LI J, ZHAO X H, et al. Surface coating for flame of DNA-treated cotton fabrics under different heating conditions[J].
retardancy and pyrolysis behavior of polyester fabric based on Journal of Analytical and Applied Pyrolysis, 2014, 108: 212-221.
calcium alginate nanocomposites[J]. Nanomaterials, 2018, 8(11): 875. [59] PI T T (皮婷婷), CHEN H H (陈煌煌), WU W (吴雯), et al. Flame-
[40] LIU J, XIAO C M. Fire-retardant multilayer assembled on polyester retardant finishing of polyester and cotton blended fabric with
fabric from water-soluble chitosan, sodium alginate and divalent montmorillonite and DNA composite sol[J]. Knitting Industries (针织
metalion[J]. International Journal of Biological Macromolecules, 工业), 2016, (9): 52-54.