バイオベースポリマーによるPFAS汚染除去技術を開発(Bio-based polymer offers a sustainable solution to ‘forever chemical’ cleanup)

2026-03-24 バース大学

英・University of Bathの研究チームは、分解されにくい「永久化学物質」と呼ばれるPFASを除去するための持続可能なバイオ由来ポリマーを開発した。このポリマーは植物由来成分から作られ、PFASを効率的に吸着・除去できるうえ、従来材料より環境負荷が低い点が特徴である。水処理などへの応用を想定し、実験では高い除去性能と再利用可能性が確認された。従来の活性炭などに比べて選択性や効率が向上し、環境中に長く残留する有害物質対策として有望視される。今後は実用化に向けたスケールアップやコスト最適化が課題であり、持続可能な水環境管理への貢献が期待される。

バイオベースポリマーによるPFAS汚染除去技術を開発(Bio-based polymer offers a sustainable solution to ‘forever chemical’ cleanup)
The bio-based membrane is made up of a network of billions of nanofibres, each one hundreds of times thinner than a human hair

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バイオベースポリアミドナノファイバー膜におけるパーフルオロ化汚染物質の水誘起閉じ込め Water-Induced Confinement of Perfluorinated Pollutants in Biobased Polyamide Nanofibrous Membranes

Xiang Ding,Muhammad Kamran,Garyfalia A. Zoumpouli,Guadalupe Jiménez-Serratos,Carmelo Herdes,Matthew G. Davidson,and Hannah S. Leese
ACS Applied Materials & Interfaces  Published: March 18, 2026
DOI:https://doi.org/10.1021/acsami.5c22145

Abstract

Perfluorooctanoic acid (PFOA), a representative per- and polyfluoroalkyl substance (PFAS), is a persistent water contaminant due to its strong C–F bonds and amphiphilic molecular nature. Here, we reveal a water-mediated adsorption mechanism in biobased poly(hexamethylene 2,5-furandicarboxylamide) (PA6F) nanofiber membranes, in which hydration induces structural densification and molecular confinement of PFOA within the fibrous network. Upon water exposure, the electrospun PA6F membrane undergoes macroscopic shrinkage driven by swelling and partial fusion of individual nanofibers, leading to a denser polymer matrix. This transformation promotes strong PFOA retention through a combination of hydrogen bonding, electrostatic interactions, and physical confinement, as supported by molecular dynamics simulations. The PA6F nanofiber membranes achieve a PFOA removal efficiency of 94.6% and an adsorption capacity of 3.92 mg g–1 at industrially polluting concentrations. Thermal regeneration at 240 °C enables complete release of confined PFOA while preserving the polymer backbone. The recovered polymer can be reprocessed by re-electrospinning to form new nanofiber membranes that retain 93% of the original adsorption capacity after reuse. These findings provide water-mediated confinement mechanisms in more sustainable polyamide systems, establishing a closed-loop adsorption-regeneration pathway for long-term PFAS remediation in aqueous environments.

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