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Hydrophobic, Sustainable, High-Barrier Regenerated Cellulose Film via a Simple One-Step Silylation Reaction

Polymers 2023 14 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 40 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Goomin Kwon, Youngho Jeon, Youngho Jeon, Goomin Kwon, Jisoo Park, Jisoo Park, Kangyun Lee, Goomin Kwon, Goomin Kwon, Kangyun Lee, Youngsang Ko, Kangyun Lee, Kangyun Lee, Youngho Jeon, Youngho Jeon, Suji Lee, Jisoo Park, Jungmok You Jeonghun Kim, Jeonghun Kim, Jungmok You

Summary

Researchers developed hydrophobic, high-barrier regenerated cellulose films through a simple one-step gas-solid silylation reaction, creating a sustainable and biodegradable alternative to petroleum-based plastic packaging films.

With the increasing importance of environmental protection, high-performance biopolymer films have received considerable attention as effective alternatives to petroleum-based polymer films. In this study, we developed hydrophobic regenerated cellulose (RC) films with good barrier properties through a simple gas-solid reaction via the chemical vapor deposition of alkyltrichlorosilane. RC films were employed to construct a biodegradable, free-standing substrate matrix, and methyltrichlorosilane (MTS) was used as a hydrophobic coating material to control the wettability and improve the barrier properties of the final films. MTS readily coupled with hydroxyl groups on the RC surface through a condensation reaction. We demonstrated that the MTS-modified RC (MTS/RC) films were optically transparent, mechanically strong, and hydrophobic. In particular, the obtained MTS/RC films exhibited a low oxygen transmission rate of 3 cm<sup>3</sup>/m<sup>2</sup> per day and a low water vapor transmission rate of 41 g/m<sup>2</sup> per day, which are superior to those of other hydrophobic biopolymer films.

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