Research progress in applying nanomaterials in the field of functional textiles

Fang Wu, Jinlong Ge, Yingyue Qin, Zongqun Li, Qiulin Li

Article ID: 1431
Vol 5, Issue 1, 2022

VIEWS - 521 (Abstract) 402 (PDF)

Abstract


The ways of developing functional textiles based on nanomaterials were introduced, and the latest research achievements of nanomaterials in such aspects as flame retardancy, antibacterial, super-hydrophobic, self-cleaning, UV resistance, and anti-static textiles were reviewed. The main technical obstacles to the large-scale application of nanomaterials in functional textiles were pointed out, the possible solutions were discussed, and the development of functional textiles by nanomaterials has been prospected.


Keywords


Nanomaterials; Functional Textiles; Flame Retardancy; Antibacterial; Self-cleaning

Full Text:

PDF


References


1. Yang M, Wu G, Li D, et al. Present situation and development trend of application of nanomaterials in modified textiles. China Textile Leader 2019; (9): 71–73.

2. Liang T, Jiang Z, Wang C, et al. A facile one-step synthesis of flame-retardant coatings on cotton fabric via ultrasound irradiation. Journal of Applied Polymer Science 2017; 134(30): 45114.

3. Wang W, Wang X, Pan Y, et al. Synthesis of phosphorylated graphene oxide based multilayer coating: Self-assembly method and application for improving the fire safety of cotton fabrics. Industrial & Engineering Chemistry Research 2017; 56(23): 6664–6670.

4. Cheng XW, Guan JP, Yang XH, et al. Improvement of flame retardancy of silk fabric by bio-based phytic acid, nano-TiO2 and polycarboxylic acid. Progress in Organic Coatings 2017; (112): 18–26.

5. Nechyporchuk O, Bordes R, Köhnke T. Wet spinning of flame-retardant cellulosic fibers supported by interfacial complexation of cellulose nanofibrils with silica nanoparticles. ACS Applied Materials & Interfaces 2017; 9(44): 39069–39077.

6. Gao D, Zhao P, Lyu B, et al. Composite based on poly(acrylic acid)/modified attapulgite/zinc oxide as a flame retardant of cotton fabrics. Cellulose 2020; 27: 2873–2886.

7. Zhou Q, Wu W, Zhou S, et al. Polydopamine-induced growth of mineralized γ–FeOOH nanorods for construction of silk fabric with excellent superhydrophobicity, flame retardancy and UV resistance. Chemical Engineering Journal 2020; 382: 122988.

8. Wang W, Wang J, Wang X, et al. Improving flame retardancy and self-cleaning performance of cotton fabric via a coating of in-situ growing layered double hydroxides (LDHs) on polydopamine. Progress in Organic Coatings 2020; 149: 105930.

9. Ortelli S, Malucelli G, Blosi M, et al. NanoTiO2@DNA complex: A novel eco, durable, fire retardant design strategy for cotton textiles. Journal of Colloid and Interface Science 2019; 546: 174–183.

10. Wu M, Ma B, Pan T, et al. Silver-nanoparticle-colored cotton fabrics with tunable colors and durable antibacterial and self-healing superhydrophobic properties. Advanced Functional Materials 2016; 26(4): 569–576.

11. Zheng Y, Xiao M, Jiang S, et al. Coating fabrics with gold nanorods for colouring UV-protection, and antibacterial functions. Nanoscale 2013; 5(2): 788–795.

12. Xu Q, Ke X, Ge N, et al. Preparation of copper nanoparticles coated cotton fabrics with durable antibacterial properties. Fibers and Polymers 2018; 19(5): 1004–1013.

13. Ibrahim MM, Mezni A, El-Sheshtawy HS, et al. Direct Z-scheme of Cu2O/TiO2 enhanced self-cleaning, antibacterial activity, and UV protection of cotton fiber under sunlight. Applied Surface Science 2019; 479: 953–962.

14. Du Z, Chen Y, Jensen M, et al. Preparation of 3D crimped ZnO/PAN hybrid nanofiber mats with photocatalytic activity and antibacterial properties by blow-spinning. Journal of Applied Polymer Science 2021; 138(9): e49908.

15. Ran J, Chen H, Bai X, et al. Immobilizing CuO/BiVO4 nanocomposite on PDA-templated cotton fabric for visible light photo-catalysis, antimicrobial activity and UV protection. Applied Surface Science 2019; 493: 1167–1176.

16. Li S, Huang J, Chen Z, et al. A review on special wettability textiles: Theoretical models, fabrication technologies and multi-functional applications. Journal of Materials Chemistry A 2017; 5: 31–55.

17. Yao H, Lu X, Chen S, et al. A robust polybenzoxazine/SiO2 fabric with superhydrophobicity for high-flux oil/water separation. Industrial & Engineering Chemistry Research 2020; 59(16): 7787–7796.

18. Guo W, Wang X, Huang J, et al. Construction of durable flame-retardant and robust superhydrophobic coatings on cotton fabrics for water-oil separation application. Chemical Engineering Journal 2020; 398: 125661.

19. Cheng Q, An X, Li Y, et al. Sustainable and biodegradable superhydrophobic coating from epoxidized soybean oil and ZnO nanoparticles on cellulosic substrates for efficient oil/water separation. ACS Sustainable Chemistry & Engineering 2017; 5(12): 11440–11450.

20. Xiao X, Cao G, Chen F, et al. Durable superhydrophobic wool fabrics coating with nanoscale Al2O3 layer by atomic layer deposition. Applied Surface Science 2015; 349: 876–879.

21. Lahiri SK, Zhang P, Zhang C, et al. Robust fluorine-free and self-healing superhydrophobic coatings by H3BO3 incorporation with SiO2–alkyl–silane@PDMS on cotton fabric. ACS Applied Materials & Interfaces 2019; 11(10): 10262–10275.

22. Chen J, Liu Z, Wen X, et al. Two-step approach for fabrication of durable superamphiphobic fabrics for self-cleaning, anti-fouling, and on-demand oil/water separation. Industrial & Engineering Chemistry Research 2019; 58(14): 5490–5500.

23. Zhou P, Zhang L, Sui X, et al. A facile method for fabricating color adjustable multifunctional cotton fabrics with solid solution BiOBrxI1–x nanosheets. Cellulose 2020; 27(6): 3517–3530.

24. Muhammad Z, Papadopoulou EL, Giulia S, et al. Fabrication of visible light-induced antibacterial and self-cleaning cot ton fabrics using manganese doped TiO2 nanoparticles. ACS Applied Bio Materials 2018; 1(4): 1154–1164.

25. Jaksik J, Tran P, Galvez V, et al. Advanced cotton fibers exhibit efficient photocatalytic self-cleaning and antimicrobial activity. Journal of Photochemistry & Photobiology A: Chemistry 2018; 365: 77–85.

26. Zhao J, Zhu W, Wang X, et al. Environmentally benign modification of breathable nanofibrous membranes exhibiting superior waterproof and photocatalytic self-cleaning properties. Nanoscale Horizons 2019; 4: 867–873.

27. Pedrosa M, Sampaio MJ, Horvat T, et al. Visible-light-induced self-cleaning functional fabrics using graphene oxide/carbon nitride material. Applied Surface Science 2019; 497: 143757.

28. Khan MZ, Militky J, Baheti V, et al. Growth of ZnO nanorods on cotton fabrics via microwave hydrothermal method: Effect of size and shape of nanorods on superhydrophobic and UV-blocking properties. Cellulose 2020; 27: 10519–10539.

29. Yuan X, Xu W, Huang F, et al. Polyester fabric coated with Ag/ZnO composite film by magnetron sputtering. Applied Surface Science 2016; 390: 863–869.

30. Li GP, Cao F, Zhang K, et al. Design of anti-UV radiation textiles with self-assembled metal-organic framework coating. Advanced Materials Interfaces 2020; 7(1): 1901525.

31. Xiao X,Liu X, Chen F, et al. Highly anti-UV properties of silk fiber with uniform and conformal nanoscale TiO2 coatings via atomic layer deposition. ACS Applied Materials & Interfaces 2015; 7(38): 21326–21333.

32. Cao J, Wang C. Multifunctional surface modification of silk fabric via graphene oxide repeatedly coating and chemical reduction method. Applied Surface Science 2017; 405: 380–388.

33. Liu R, Liu J, Hu Z, et al. Dopamine-carbon nanotubes composite antistatic finishing of wool fabrics. Knitting Industries 2020; (4): 41–44.

34. Wei L, Ma J, Zhang W, et al. Enhanced antistatic and self-heatable wearable coating with self-tiered structure caused by amphiphilic MXene in waterborne polymer. Langmuir 2020; 36(23): 6580–6588.

35. Li L, Liu J, Hu Z, et al. Graphene oxide loading on polyester fabrics and antistatic properties. Journal of Textile Research 2020; (9): 102–107.

36. Zhang X, Wang J, Ge Y, et al. Antistatic and anti-ultraviolet finish of polyester fabrics with Fe3+, Ag+ doped SiO2/TiO2 composite sol. Advanced Textile Technology 2015; (5): 19–25.

37. Kelly FM, Johnston JH. Colored and functional silver nanoparticle-wool fiber composites. ACS Applied Materials & Interfaces 2011; 3(4): 1083–1092.

38. Liu K. Safety evaluation status of nanomaterials for textiles functional finishing. China Textile Leader 2020; (4): 26–30.




DOI: https://doi.org/10.24294/can.v5i1.1431

Refbacks

  • There are currently no refbacks.


Creative Commons License
This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.

This site is licensed under a Creative Commons Attribution 4.0 International License.