REFERENCES

1. Yin, L.; Zhang, J.; Luo, J.; et al. Janus-inspired alternating architecture CNF/MXene/ZnFe2O4@PANI composite films with outstanding electromagnetic interference shielding and Joule heating. J. Mater. Sci. Technol. 2025, 223, 275-86.

2. Xiao, F.; Peng, W.; Li, K.; Yuan, B.; Fontaine, G.; Bourbigot, S. A highly fire-safe wood hybrid based on delignification and multi-component co-impregnation strategies. Constr. Build. Mater. 2025, 489, 142360.

3. Wang, H.; Wang, Y.; Li, T.; et al. Nature‐inspired, heat & noise‐insulation, highly robust MOFs‐based hybrid fire‐retardant coatings with easy‐recycling feature. Adv. Funct. Mater. 2025, 35, 2500800.

4. Ozcelik, G.; Elcin, O.; Guney, S.; Erdem, A.; Hacioglu, F.; Dogan, M. Flame‐retardant features of various boron compounds in thermoplastic polyurethane and performance comparison with aluminum trihydroxide and magnesium hydroxide. Fire. Mater. 2022, 46, 1020-33.

5. Afshari, M.; Dinari, M. Improving the Reaction-to-fire properties of thermoplastic polyurethane by new phosphazene-triazinyl-based covalent organic framework. ACS. Appl. Mater. Interfaces. 2022, 14, 49003-13.

6. Wang, H. Wang ,Y.; Gao, J.; Zhu, Z.; Xiao, F. Synergistic engineering of phosphaphenanthrene and ionic liquids for unlocking flame retardant multifunctional epoxy resin with high performances. Polym. Degrad. Stab. 2025, 239, 111407.

7. Han, S.; Yang, F.; Li, Q.; Sui, G.; Kalimuldina, G.; Araby, S. Synergetic effect of α-ZrP nanosheets and nitrogen-based flame retardants on thermoplastic polyurethane. ACS. Appl. Mater. Interfaces. 2023, 15, 17054-69.

8. Li, Y.; Li, Y.; Hu, W.; Wang, D. Cobalt ions loaded polydopamine nanospheres to construct ammonium polyphosphate for the improvement of flame retardancy of thermoplastic polyurethane elastomer. Polym. Degrad. Stab. 2022, 202, 110035.

9. Shi, Y.; Yao, A.; Han, J.; et al. Architecting fire safe hierarchical polymer nanocomposite films with excellent electromagnetic interference shielding via interface engineering. J. Colloid. Interface. Sci. 2023, 640, 179-91.

10. Bourbigot, S.; Turf, T.; Bellayer, S.; Duquesne, S. Polyhedral oligomeric silsesquioxane as flame retardant for thermoplastic polyurethane. Polym. Degrad. Stab. 2009, 94, 1230-7.

11. Cai, W.; Zhan, J.; Feng, X.; et al. Facile construction of flame-retardant-wrapped molybdenum disulfide nanosheets for properties enhancement of thermoplastic polyurethane. Ind. Eng. Chem. Res. 2017, 56, 7229-38.

12. Patrick Lim, W.; Mariatti, M.; Chow, W.; Mar, K. Effect of intumescent ammonium polyphosphate (APP) and melamine cyanurate (MC) on the properties of epoxy/glass fiber composites. Compos. Part. B. Eng. 2012, 43, 124-8.

13. Matykiewicz, D.; Przybyszewski, B.; Stanik, R.; Czulak, A. Modification of glass reinforced epoxy composites by ammonium polyphosphate (APP) and melamine polyphosphate (PNA) during the resin powder molding process. Compos. Part. B. Eng. 2017, 108, 224-31.

14. Zhao, C.; Liu, Y.; Wang, D.; Wang, D.; Wang, Y. Synergistic effect of ammonium polyphosphate and layered double hydroxide on flame retardant properties of poly(vinyl alcohol). Polym. Degrad. Stab. 2008, 93, 1323-31.

15. Shao, Z.; Deng, C.; Tan, Y.; Chen, M.; Chen, L.; Wang, Y. Flame retardation of polypropylene via a novel intumescent flame retardant: Ethylenediamine-modified ammonium polyphosphate. Polym. Degrad. Stab. 2014, 106, 88-96.

16. Guan, Y.; Huang, J.; Yang, J.; Shao, Z.; Wang, Y. An effective way to flame-retard biocomposite with ethanolamine modified ammonium polyphosphate and its flame retardant mechanisms. Ind. Eng. Chem. Res. 2015, 54, 3524-31.

17. Wu, C.; Wang, X.; Zhang, J.; Cheng, J.; Shi, L. Microencapsulation and surface functionalization of ammonium polyphosphate via in-situ polymerization and thiol-ene photograted reaction for application in flame-retardant natural rubber. Ind. Eng. Chem. Res. 2019, 58, 17346-58.

18. Wang, B.; Qian, X.; Shi, Y.; et al. Cyclodextrin microencapsulated ammonium polyphosphate: preparation and its performance on the thermal, flame retardancy and mechanical properties of ethylene vinyl acetate copolymer. Compos. Part. B. Eng. 2015, 69, 22-30.

19. Xu, Y.; Yan, C.; Du, C.; et al. High-strength, thermal-insulating, fire-safe bio-based organic lightweight aerogel based on 3D network construction of natural tubular fibers. Compos. Part. B. Eng. 2023, 261, 110809.

20. Zhu, Z.; Deng, X.; Ye, Y.; et al. Hierarchical cyclic phosphates@MIL-101 toward improving thermal stability, fire retardancy, UV shielding, and mechanical performance of thermoplastic polyurethane based on nanoconfinement engineering. Colloids. Surf. A. Physicochem. Eng. Asp. 2026, 731, 139112.

21. Shi, Y.; Wu, S.; Chen, J.; et al. Hierarchically building flame retardant and flexible electromagnetic interference shielding composites with tunable mechanism. J. Mater. Sci. Technol. 2025, 239, 39-54.

22. Xiao, F.; He, W.; Shao, W.; et al. Natural tannic acid-based intumescent coating towards efficient fire resistance and thermal performance for steel structure. Int. J. Biol. Macromol. 2025, 322, 146983.

23. Xu, Y.; Hu, H.; Tao, B.; Yin, R.; Liu, L.; Li, B. Safe and economical preparation of amino acid-derived bio-based triazine char-forming agent for efficient intumescent flame retardant polypropylene. Constr. Build. Mater. 2025, 484, 141876.

24. Xiao, F.; Huo, X.; Shao, W.; Yuan, B.; Li, K.; Zhu, L. A versatile eco-friendly intumescent coating imparts excellent fire protective performance for steel structures and batteries. Prog. Org. Coat. 2026, 212, 109850.

25. Zhang, W.; Wang, H.; Ji, S.; et al. Mechanically durable and flame retardant CNF/PPy-MXene aerogel composites toward superior electromagnetic shielding with ultra-low reflectivity. Colloids. Surf. A. Physicochem. Eng. Asp. 2025, 723, 137294.

26. Ding, H.; Wang, J.; Wang, C.; et al. Intermolecular hydrogen bonding enabling mechanically robust, thermally stable, and solvent-resistance bio-based polyimine networks. Compos. Part. A. Appl. Sci. Manuf. 2025, 196, 109006.

27. Lian, R.; Gao, Q.; Zhao, Z.; et al. Hierarchical MXene@PBA nanohybrids towards high-efficiency flame retardancy and smoke suppression of robust yet tough polymer nanocomposites at ultra-low additions. Compos. Part. B. Eng. 2023, 267, 111074.

28. Ding, H.; Liu, L.; Wang, C.; et al. Highly transparent, mechanically strong, recyclable, and flame-retardant vanillin-modified poly(urethane-urea) elastomers via dynamic oxime-urethane bonds and hydrogen bonds. Chem. Eng. J. 2025, 514, 163416.

29. Luo, J.; Zhou, K.; Ding, Y.; Yin, L.; Hou, Y. Dual self-antiaggregating hybrid nanoarchitectonics for synergistic effects on the fire safety of intumescent flame retardant epoxy resins. Adv. Powder. Technol. 2025, 36, 104815.

30. Lin, B.; Yuen, A. C. Y.; Chen, T. B. Y.; et al. Experimental and numerical perspective on the fire performance of MXene/Chitosan/Phytic acid coated flexible polyurethane foam. Sci. Rep. 2021, 11, 4684.

31. Wang, J.; Ding, H.; Bi, Z.; et al. “Rigid-Flexible” structured polyimine/graphite felt composites with excellent fire Resistance, electromagnetic shielding and recyclability. Chem. Eng. J. 2024, 501, 157610.

32. Yin, L.; Zhou, M.; Shi, Y.; Zhou, K. Construction of superhydrophobic flexible polyurethane with dual nano-enhancement effect for solar-assisted high-viscosity oil cleanup and oil-water separation. Appl. Surf. Sci. 2024, 660, 159971.

33. Zhang, L.; Huang, Y.; Dong, H.; Xu, R.; Jiang, S. Flame-retardant shape memory polyurethane/MXene paper and the application for early fire alarm sensor. Compos. Part. B. Eng. 2021, 223, 109149.

34. Liu, C.; Wu, W.; Shi, Y.; et al. Creating MXene/reduced graphene oxide hybrid towards highly fire safe thermoplastic polyurethane nanocomposites. Compos. Part. B. Eng. 2020, 203, 108486.

35. Kandola, B.; Pornwannachai, W.; Ebdon, J. Flame retardance of a bio-based furan resin: effects of added flame retardants. Polym. Degrad. Stab. 2024, 220, 110637.

36. Geschwindner, C.; Goedderz, D.; Li, T.; Bender, J.; Böhm, B.; Dreizler, A. The effects of various flame retardants on the combustion of polypropylene: combining optical diagnostics and pyrolysis fragment analysis. Polym. Degrad. Stab. 2023, 211, 110321.

37. Tian, F.; Mao, W.; Xu, X. Effect of a layered combination of APP and TBC on the mechanics and flame retardancy of poplar strandboards. Constr. Build. Mater. 2023, 401, 132881.

38. Ramachandran, R.; Rajavel, K.; Xuan, W.; Lin, D.; Wang, F. Influence of Ti3C2Tx (MXene) intercalation pseudocapacitance on electrochemical performance of Co-MOF binder-free electrode. Ceram. Int. 2018, 44, 14425-31.

39. Jiao, E.; Wu, K.; Liu, Y.; et al. Ultrarobust MXene-based laminated paper with excellent thermal conductivity and flame retardancy. Compos. Part. A. Appl. Sci. Manuf. 2021, 146, 106417.

40. Jia, Z.; Li, Z.; Ma, S.; et al. Constructing conductive titanium carbide nanosheet (MXene) network on polyurethane/polyacrylonitrile fibre framework for flexible strain sensor. J. Colloid. Interface. Sci. 2021, 584, 1-10.

41. Chen, W.; Wang, L.; Liu, G. Synthesis of ammonium polyphosphate with crystalline form V (APP-V) from melamine polyphosphate (MPP). Polym. Degrad. Stab. 2012, 97, 2567-70.

42. Wang, D.; Zhang, D.; Yang, Y.; Mi, Q.; Zhang, J.; Yu, L. Multifunctional latex/polytetrafluoroethylene-based triboelectric nanogenerator for self-powered organ-like MXene/metal-organic framework-derived CuO nanohybrid ammonia sensor. ACS. Nano. 2021, 15, 2911-9.

43. Zhao, W.; Lei, Y.; Zhu, Y.; et al. Hierarchically structured Ti3C2T MXene paper for Li-S batteries with high volumetric capacity. Nano. Energy. 2021, 86, 106120.

44. Ali, W.; Zilke, O.; Danielsiek, D.; et al. Flame-retardant finishing of cotton fabrics using DOPO functionalized alkoxy- and amido alkoxysilane. Cellulose 2023, 30, 2627-52.

45. Ye, X.; Feng, Y.; Tian, P.; et al. Engineering two nitrogen-containing polyhedral oligomeric silsesquioxanes (N-POSSs) to enhance the fire safety of epoxy resin endowed with superior thermal stability. Polym. Degrad. Stab. 2022, 200, 109946.

46. Lu, W.; Jin, Z. Synthesis of phosphorus/nitrogen containing intumescent flame retardants from p-hydroxybenzaldehyde, vanillin and syringaldehyde for rigid polyurethane foams. Polym. Degrad. Stab. 2022, 195, 109768.

47. Battig, A.; Markwart, J. C.; Wurm, F. R.; Schartel, B. Hyperbranched phosphorus flame retardants: multifunctional additives for epoxy resins. Polym. Chem. 2019, 10, 4346-58.

48. Xu, F.; Zhang, G.; Wang, P.; Dai, F. Durable and high-efficiency casein-derived phosphorus-nitrogen-rich flame retardants for cotton fabrics. Cellulose 2022, 29, 2681-97.

49. Zhai, R.; Yang, Z.; Chen, Y.; Zhang, Y.; Lv, Z. Design novel environmentally-friendly flame retardants. Combust. Sci. Technol. 2022, 195, 2474-90.

50. Yi, C.; Xu, C.; Sun, N.; et al. Flame-retardant and transparent poly(methyl methacrylate) composites based on phosphorus-nitrogen flame retardants. ACS. Appl. Polym. Mater. 2022, 5, 846-55.

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