チョウに着想を得た大気モニタリング技術を開発(Butterfly-Inspired Technology Could Change the Way We Monitor Air)

2026-08-14 中国科学院(CAS)

中国科学院(CAS)理化技術研究所(TIPC)の研究チームは、チョウの口吻(こうふん)の吸蜜機構に着想を得た、電源不要の新しい空気中サンプル採取技術「FACE(Film-Rupture Actuated Capillary Enrichment)」を開発した。研究ではX線観察により、巻かれた口吻内部の液膜が限界まで薄くなると破裂し、その際に解放される表面エネルギーによって液体が急速に移動する現象を発見した。この原理を模倣した小型デバイスは、リング状液膜で空気中のウイルス飛沫、汚染ガス、農薬粒子などを捕集し、液膜破裂を利用して試料を検出部へ濃縮輸送する。ポンプや電池を必要とせず、使い捨て1個当たり約0.12ドルと低コストである。実験では、新型コロナウイルス(SARS-CoV-2)核タンパク質の検出で従来のポンプ式エアロゾルサンプラーの100倍の感度を示した。また、採取から濃縮・検出までを一体化することで試料損失を抑え、回収効率はほぼ100%に達した。農業分野の農薬曝露評価や感染症監視、公衆衛生モニタリングなど幅広い応用が期待される。

チョウに着想を得た大気モニタリング技術を開発(Butterfly-Inspired Technology Could Change the Way We Monitor Air)
Nature’s inspiration: an alternative way of butterfly drinks nectar (Image by TIPC)

<関連情報>

フィルム破裂を作動させるポンプ不要の毛細管濃縮による発生源近傍の空中サンプリング Film-rupture actuated pump-free capillary enrichment for near-source airborne sampling

Chengqi Zhang, Shijie Liu, Tao Shen, +3 , and Zhichao Dong
Proceedings of the National Academy of Sciences  Published:August 13, 2026
DOI:https://doi.org/10.1073/pnas.2615727123

Abstract

With the persistent threats from severe respiratory diseases and airborne pollutants, billions of people worldwide lack timely access to essential diagnostic services, particularly in low-resource regions where laboratory infrastructure is scarce. Conventional pump-suction airborne samplers face challenges including cost, power dependency, and unavoidable analyte loss in complex systems. Here, we demonstrate a film-rupture actuated capillary enrichment (FACE) airborne sampler that replaces external suction with inherent surface-energy release of a rupturing liquid film, unifying collection, recovery, and readout into a single, pump-free event. Guided by in situ observations of a coiled-butterfly-proboscis “film-rupture” drinking mode and a biomimetic ring-and-capillary design, the FACE sampler couples a suspending liquid film for high-area collection with film-rupture-augmented capillary transport for autonomous recovery. A film-rupture augmented Washburn model and an “empty-effect” design criterion with optimized double-outlet, Tesla-guided architecture quantitatively explain submillisecond triggering (<0.5 ms), high-velocity enrichment (>50 mm s−1), and complete evacuation with near-zero residue. Built from low-cost polymers (~$0.12), the pump-free and portable FACE sampler with a robust liquid film is demonstrated and adapted for diverse targets, scenarios, and detection methods. In the near-source demonstration, the FACE sampler outperforms the pump-suction device in improving sampling efficiency and minimizing dilution, enabling visual detection at two orders of magnitude lower analyte levels. We envision broad applications of the FACE airborne sampler in environmental monitoring, agricultural safety, and public healthcare, providing a sustainable and scalable approach toward equitable access to high-performance point-of-care technologies.

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