Journal of Textile Research ›› 2024, Vol. 45 ›› Issue (01): 39-47.doi: 10.13475/j.fzxb.20220903801

• Fiber Materials • Previous Articles     Next Articles

Preparation and performonce of cotton stalk bast microcrystalline cellulose/modified graphene oxide composite flame-retardant fiber

GU Jinjun, WEI Chunyan(), GUO Ziyang, LÜ Lihua, BAI Jin, ZHAO Hanghuiyan   

  1. School of Textile and Material Engineering, Dalian Polytechnic University, Dalian, Liaoning 116034, China
  • Received:2022-09-15 Revised:2023-09-06 Online:2024-01-15 Published:2024-03-14

Abstract:

Objective Cotton stalk bast microcrystalline cellulose (MCC) is microcrystalline cellulose extracted from waste cotton stalks. MCC fiber prepared from MCC has outstanding performances in coloration and moisture absoprtion. However, the flame retardant performance of MCC fiber is unsatisfactory, which limits the continued development of MCC fiber. The surface grafting method was adopted to modify graphene oxide (GO) by adding phosphorus. The modified GO was mixed with MCC to prepare composite fibers to improve the flame retardant performance of MCC fibers.

Methods In this paper, 9,10-dihydro-9-oxa-10-phosphophenanthrene-10-oxide (DOPO) was used as the modifier to modify graphene oxide (GO) by electrophilic substitution. In the process of GO modification, P—H in DOPO molecule opens the epoxy ring on the surface of GO, so that P forms a covalent bond with C on the epoxy ring on the surface of GO, and was grafted with GO. The phosphorus-containing flame retardant DOPO-GO prepared in the previous process was added to the MCC spinning liquid by physical blending, and DOPO-GO was uniformly distributed in the spinning liquid by ultrasonic dispersion, and MCC/DOPO-GO fiber with good flame retardant performance was prepared by wet spinning. The mechanical properties, thermal properties and flame retardant properties were analyzed.

Results DOPO was successfully grafted onto graphene oxide, decreases the DOPO-GO particle diameter,and destroys the arrangement regularity of GO lamellar, which was conducive to reducing GO agglomeration and improving the dispersion uniformity of GO in the spinning solution, and increases the break strength of MCC/DOPO-GO fibers by 450%. The enthalpy values of MCC/GO and MCC/DOPO-GO fibers are increased by 916.2 and 1 280.2 J/g, respectively, compared with MCC fibers. It shows that the thermal stability of the fiber is improved, indirectly showing that GO and DOPO-GO can improve the flame retardant properties of the fibers. The flame retardant DOPO-GO contains the green flame retardant element P, and the P element is evenly distributed in the fiber cross section, which can greatly improve the flame retardant performance. The intensity D-peak/intensity-G-peak (ID/IG) of the residual carbon after combustion of MCC/GO and MCC/DOPO-GO fiber decreased by 4.0% and 34.2%, respectively, compared with that of MCC fiber. In other words, DOPO-GO flame retardant can form a denser carbon layer, which can effectively prevent high-temperature ablation and further improve the flame retardant property of the fiber. When the dosage of flame retardant DOPO-GO was 7% of MCC, the limiting oxygen index LOI value of MCC/DOPO-GO fiber reached 27.3%, which was 66.5% higher than that of MCC fiber 16.4%, and the fiber changed from flammable fiber to refractory fiber.

Conclusion The thermal stability and mechanical properties of the MCC/DOPO-GO fibers modified by DOPO-GO are greatly improved, and the flame retardant performance of MCC/ DOPO-GO fibers changes from flammable to refractory. This study provides a new idea for the study of flame retardant performance of cotton straw husk microcrystalline cellulose.

Key words: cotton stalk bast microcrystalline cellulose, 9,10-dihydro-9-oxa-10-phosphoheterofi-10-oxide, graphene oxide, flame retardant performance, mechanical property

CLC Number: 

  • TS102.2

Fig.1

Infrared spectra of GO and DOPO-GO"

Fig.2

Reaction mechanism of DOPO-GO"

Fig.3

X-ray diffraction patterns of GO and DOPO-GO"

Fig.4

Distribution of surface elements for GO and DOPO-GO"

Tab.1

Distribution percentage of elements by mass of GO and DOPO-GO"

样品名称 元素质量百分比/%
C O P
GO 60.8 39.2 -
DOPO-GO 61.0 37.9 1.1

Fig.5

SEM images of GO and DOPO-GO (×10 000)"

Fig.6

Particle size distribution of GO and DOPO-GO"

Fig.7

Electron microscopy images of MCC,MCC/GO and MCC/DOPO-GO dispersed in spinning solution. (a) MCC dissolved in ionic liquid; (b) Distribution of MCC/GO in spinning solution; (c) Distribution of MCC/DOPO-GO in spinning solution"

Fig.8

SEM images of surface morphologies of cotton stalk bast flame retardant fibers with different flame retardants(×500)"

Fig.9

EDS analysis images of MCC/DOPO-GO fiber's cross section. (a) Element distribution map; (b) Distribution map of phosphorus element"

Fig.10

Influence of dosage of flame retardant on fiber's mechanical properties"

Fig.11

TG, DTG and DSC analysis curves of MCC、MCC/GO、MCC/DOPO-GO fibers"

Fig.12

SEM images of carbon residues of MCC fibers、MCC/GO fibers、MCC/DOPO-GO fibers"

Fig.13

Raman spectroscopic analysis of carbon residues of MCC fibers, MCC/GO fibers and MCC/DOPO-GO fibers"

Fig.14

Influence of dosage of flame retardant on flame retardant performance"

[1] 来水利, 张昭, 王花. 微晶纤维素的溶解及其阻燃性能[J]. 精细化工, 2021, 38(2): 310-316.
LAI Shuili, ZHANG Zhao, WANG Hua. Dissolution and flame retardancy of microcrystalli cellulose[J]. Fine Chemical Industry, 2021, 38(2): 310-316.
[2] 姜慧敏, 孙东立, 郑燕, 等. 磷酸三苯酯/纤维素阻燃PC/ABS的研究[J]. 现代塑料加工应用, 2018, 30(2): 38-41.
JIANG Huimin, SUN Dongli, ZHENG Yan, et al. Research of PC/ABS flame retardant properties with triphenyl phosphate/microcrystalline cellulose[J]. Modern Plastics Processing and Application, 2018, 30(2): 38-41.
[3] WANG Minghang, WU Quan, FENG Zhengyu, et al. Surface modification of cellulose microcrystalline with aluminate coupling agent and its effects on flame retardant and mechanical properties of epoxy resin[J]. Fibers and Polymers, 2020, 21(10): 2344-2352.
doi: 10.1007/s12221-020-1353-z
[4] YUAN Huabin, TANG Rencheng, YU Chengbing. Flame retardant functionalization of microcrystalline cellulose by phosphorylation reaction with phytic acid[J]. International Journal of Molecular Sciences, 2021, 22(9631):1-10.
doi: 10.3390/ijms22010001
[5] 孔令训, 魏春艳. 棉秆皮微晶纤维素相变调温纤维的基本性能[J]. 棉纺织技术, 2020, 48(7): 7-12.
KONG Lingxun, WEI Chunyan. Basic property of cotton stalk bast microcrystalline cellulose phase change temperature-adaptable fiber[J]. Cotton Textile Technology, 2020, 48(7): 7-12.
[6] 李阵群, 许多, 魏春艳. 棉秆皮纤维素/氧化石墨烯纤维的制备及其力学性能和吸附性能[J]. 纺织学报, 2020, 41(1):15-20.
LI Zhenqun, XV Duo, WEI Chunyan, et al. Preparation and mechanical properties of cotton stalk skin cellulose/graphene oxide fiber[J]. Journal of Textile Research, 2020, 41(1): 15-20.
[7] YUAN Gaowei, YANG Bing, CHEN Yinghong, et al. Synthesis of a novel multi-structure synergistic POSS-GO-DOPO ternary graft flame retardant and its application in polypropylene[J]. Composites Part A:Applied Science and Manufacturing, 2019, 117:345-356.
doi: 10.1016/j.compositesa.2018.12.006
[8] 叶孝勇, 严伟, 李乾波, 等. DOPO改性氧化石墨烯阻燃环氧树脂研究[J]. 塑料科技, 2019, 47(6): 18-22.
YE Xiaoyong, YAN Wei, LI Qianbo, et al. Study on DOPO modified graphene oxide flame retardant epoxy resin[J]. Plastics Science and Technology, 2019, 47(6): 18-22.
[9] JI Pengfei, CUI Yihua, LIU Dongyue, et al. The Bi-DOPO derivative functionalized graphene oxide: preparation and its flame-retardation on epoxy resin[J]. Polymers for Advanced Technologies, 2021, 32(8): 2843-2855.
doi: 10.1002/pat.v32.8
[10] ZHANG Yingzhe, SHI Congling, QIAN Xiaodong, et al. DOPO/Silicon/CNT nanohybrid flame retardants: toward improving the fire safety of epoxy resins[J]. Polymers, 2022, 14(565):1-12.
doi: 10.3390/polym14010001
[1] CHEN Meiyu, LI Lifeng, DONG Xia. Mechanical properties of long carbon chain polyamide 1012 fiber at different temperature fields [J]. Journal of Textile Research, 2023, 44(11): 9-18.
[2] YANG Qiliang, YANG Haiwei, WANG Dengfeng, LI Changlong, ZHANG Lele, WANG Zongqian. Fabrication and oil absorbency of superhydrophobic and elastic silk fibroin fibrils aerogel [J]. Journal of Textile Research, 2023, 44(09): 1-10.
[3] ZHANG Ying, SONG Minggen, JI Hong, CHEN Kang, ZHANG Xianming. Influence of heat-setting process on structure and properties of high-tenacity polyester industrial yarns [J]. Journal of Textile Research, 2023, 44(09): 43-51.
[4] SUN Mingtao, CHEN Chengyu, YAN Weixia, CAO Shanshan, HAN Keqing. Influence of needling reinforcement frequency on properties of jute/polylactic acid fiber composite sheets [J]. Journal of Textile Research, 2023, 44(09): 91-98.
[5] ZHAO Mingshun, CHEN Xiaoxiong, YU Jinchao, PAN Zhijuan. Spinning and microstructure and properties of photochromic polylactic acid fibers [J]. Journal of Textile Research, 2023, 44(07): 10-17.
[6] DUAN Chenghong, WU Gangben, LUO Xiangpeng. Mechanical properties of carbon fiber reinforced epoxy resin woven composites based on DIGIMAT [J]. Journal of Textile Research, 2023, 44(07): 126-131.
[7] JIANG Zhiming, ZHANG Chao, ZHANG Chenxi, ZHU Ping. Preparation and properties of flame-retardant viscose fabrics modified with phosphated polyethyleneimine [J]. Journal of Textile Research, 2023, 44(06): 161-167.
[8] SONG Jie, CAI Tao, ZHENG Fuer, ZHENG Huanda, ZHENG Laijiu. Research on supercritical CO2 waterless dyeing property of polyester knitted shoe materials [J]. Journal of Textile Research, 2023, 44(05): 46-53.
[9] SUN Jianghao, SHAO Yanzheng, WEI Chunyan, WANG Ying. Preparation and adsorption analysis of sodium alginate/graphene oxide microporous aerogel fiber [J]. Journal of Textile Research, 2023, 44(04): 24-31.
[10] LUO Hailin, SU Jian, JIN Wanhui, FU Yaqin. Process optimization of novel silk reeling technique [J]. Journal of Textile Research, 2023, 44(04): 46-54.
[11] HUANG Wei, ZHANG Jiayu, ZHANG Dong, CHENG Chunzu, LI Ting, WU Wei. Property characterization and comparative analysis of Lyocell fibers [J]. Journal of Textile Research, 2023, 44(03): 42-48.
[12] JIANG Bochen, WANG Yue, WANG Fujun, LIN Jing, GUO Aijun, WANG Lu, GUAN Guoping. Correlation of braiding parameters and mechanical properties of mechanically braided integrated esophageal covered stents [J]. Journal of Textile Research, 2023, 44(03): 88-95.
[13] CHEN Huanhuan, CHEN Kaikai, YANG Murong, XUE Haolong, GAO Weihong, XIAO Changfa. Preparation and properties of polylactic acid/thymol antibacterial fibers [J]. Journal of Textile Research, 2023, 44(02): 34-43.
[14] WAN Ailan, SHEN Xinyan, WANG Xiaoxiao, ZHAO Shuqiang. Preparation and sensing response characterization of polydopamine modified reduced graphene oxide/polypyrrole conductive fabrics [J]. Journal of Textile Research, 2023, 44(01): 156-163.
[15] WANG Shudong. Structure and mechanical properties of three-dimensional porous biodegradable polymer artificial esophageal scaffold [J]. Journal of Textile Research, 2022, 43(12): 16-21.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!