安全で堆肥化可能な包装材をスケーラブルに製造する手法を開発(Researchers develop scalable method for safer, compostable packaging)

2026-04-20 バージニア工科大学(Virginia Tech)

バージニア工科大学の研究は、持続可能なバイオプラスチックの開発に向け、植物由来資源や廃棄物バイオマスを活用した新たな材料設計と生産手法を検討した。従来の石油由来プラスチックに代わる素材として、分解性や環境負荷低減を重視しつつ、性能や耐久性の向上を目指している。研究では、原料の選定から加工プロセス、利用後の分解特性までを総合的に評価し、循環型材料としての可能性を示した。これにより、プラスチック廃棄問題の解決と持続可能な資源利用の両立に貢献することが期待される。

<関連情報>

水系スプレーコーティングプロセスを用いてPHAとHPMCから作製したバイオプラスチック多層フィルムの開発 Development of bioplastic multilayer films fabricated with PHA and HPMC using a water-based spray coating process

Kihyeon Ahn, Chenxi Cao, Zunhuang He, Su Jung Hong, Young-Teck Kim, Haibo Huang, Zhiwu Wang, Eunhye Lee, Yookyoung Shim
Food Packaging and Shelf Life  Available online: 19 March 2026
DOI:https://doi.org/10.1016/j.fpsl.2026.101736

Graphical Abstract

安全で堆肥化可能な包装材をスケーラブルに製造する手法を開発(Researchers develop scalable method for safer, compostable packaging)

Highlights

  • A solvent-free strategy was developed for scalable multilayer bioplastic film fabrication.
  • Aqueous PHA was spray-coated onto HPMC, but heat treatment was essential for layer formation.
  • Hot pressing fused PHA particles, creating a well-laminated multilayer structure with smooth surface.
  • Oxygen and moisture barrier properties were significantly improved via hot-pressed lamination.
  • This method improves sustainability by using a water-based spray coating process.

Abstract

This study presents a scalable, aqueous-based method for fabricating multilayer biopolymer films using polyhydroxyalkanoate (PHA) in aqueous suspension, eliminating the need for organic solvents. Conventional solvent-based casting is often used due to the poor interfacial adhesion and incompatible thermal properties of bioplastics, which hinder co-extrusion. However, this process suffers from low processing efficiency, solvent dependency, and weak interlayer adhesion, limiting its large-scale applicability. To address these limitations, aqueous PHA suspension was spray-coated onto hydroxypropyl methylcellulose (HPMC) films, followed by hot pressing to form a cohesive multilayer structure. Spray-coating alone caused cavities and uneven PHA distribution. In contrast, hot pressing fused the particles, improving not only the surface smoothness from 5.66 to 0.08 μm (at 5 MPa) but also interfacial bonding among layers. This significantly enhanced barrier properties, lowering the oxygen transmission rate from 120.49 ± 4.63–52.24 ± 1.19 cm3/(m2·day) and the water vapor transmission rate from 1170.31 ± 12.85–423.14 ± 7.75 g/(m2·day). Tensile strength also increased from 42.29 ± 2.47–70.17 ± 3.11 MPa. These results demonstrate the potential of this solvent-free method for scalable production of sustainable, high-performance multilayer packaging films.

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