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Article

Development of Silylated Lignin-Based Intumescent Flame Retardants for Biodegradable Plastics

1
Major in Wood and Paper Science, School of Forestry, Science and Landscape Architecture, Kyungpook National University, 80, Daehak-Ro, Buk-Gu, Daegu 41566, Republic of Korea
2
Institute of Agricultural Science and Technology, Kyungpook National University, 80, Daehak-Ro, Buk-Gu, Daegu 41566, Republic of Korea
3
Gumi Electronics & Information Technology Research Institute, Gumi 39171, Republic of Korea
*
Author to whom correspondence should be addressed.
Polymers 2025, 17(13), 1727; https://doi.org/10.3390/polym17131727
Submission received: 20 May 2025 / Revised: 17 June 2025 / Accepted: 19 June 2025 / Published: 20 June 2025
(This article belongs to the Special Issue Innovations in Bioplastic and Sustainable Plastics)

Abstract

The global market for flame-retardant materials is expected to grow steadily, from USD 7.0 billion in 2022 to USD 16.6 billion in 2030, driven by increasing demand for environment-friendly fire safety solutions in transportation, construction, and electronics. Polylactic acid (PLA), a biodegradable polymer which possesses excellent mechanical properties, is increasingly being considered for future mobility applications. However, it is characterized by high heat release and toxic smoke during combustion, which are significant drawbacks. In order to address this, the chemical modification of Kraft lignin was achieved through a phenolation and subsequent silylation with tetraethoxysilane, aiming to mitigate the degradation of PLA’s mechanical properties while utilizing its inherent char-forming ability. The modified lignins were combined with ammonium polyphosphate (APP) and melt-mixed with PLA using an injection-mixing molder to prepare test specimens. Analysis by FT-IR, NMR spectroscopy, and SEM-EDS confirmed successful grafting of phenolic and silane functionalities, and thermogravimetric analysis demonstrated enhanced thermal stability of the modified lignins compared to unmodified ones. Vertical burning tests and limiting oxygen index (LOI) measurements showed that the PLA/APP/SPKL composite material achieved a V-0 UL-94 rating and 31.95% LOI, demonstrating the highest level of flame retardancy. This compares to the LOI of neat PLA, 19 to 21%. Despite the enhancement in flame retardancy to the V-0 level, the decline in tensile strength was limited, and the composite retained comparable mechanical strength to PLA-APP composites with V-2 flame retardancy. The findings indicate that the combination of phenolation and silylation of lignin with APP, a flame-retardant material, offers a viable and sustainable methodology for the fabrication of PLA composites that exhibit both flame retardancy and mechanical strength.
Keywords: flame retardant; lignin silylation; mechanical and fire properties; PLA composites flame retardant; lignin silylation; mechanical and fire properties; PLA composites

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MDPI and ACS Style

Yoo, H.; Jo, J.; Kim, S.J.; Koo, B. Development of Silylated Lignin-Based Intumescent Flame Retardants for Biodegradable Plastics. Polymers 2025, 17, 1727. https://doi.org/10.3390/polym17131727

AMA Style

Yoo H, Jo J, Kim SJ, Koo B. Development of Silylated Lignin-Based Intumescent Flame Retardants for Biodegradable Plastics. Polymers. 2025; 17(13):1727. https://doi.org/10.3390/polym17131727

Chicago/Turabian Style

Yoo, Heesu, Jaemin Jo, Sung Jin Kim, and Bonwook Koo. 2025. "Development of Silylated Lignin-Based Intumescent Flame Retardants for Biodegradable Plastics" Polymers 17, no. 13: 1727. https://doi.org/10.3390/polym17131727

APA Style

Yoo, H., Jo, J., Kim, S. J., & Koo, B. (2025). Development of Silylated Lignin-Based Intumescent Flame Retardants for Biodegradable Plastics. Polymers, 17(13), 1727. https://doi.org/10.3390/polym17131727

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