軟質材料の接着を支配する新たなメカニズムを発見(Georgia Tech Researchers Discover New Mechanism Behind Soft-Material Adhesion)

2026-08-11 ジョージア工科大学

ジョージア工科大学の研究チームは、柔らかい材料の接着・剥離を支配する新たな物理機構を発見した。従来の接着力学では、接着面を速く引き離すほど接着力が一貫して強くなると考えられていた。しかし研究では、軟質ハイドロゲルの接着力が引き離し速度の上昇に伴って、いったん低下した後、再び増加することを確認した。つまり、ある速度域では接着力が最小となり、材料を比較的容易に剥離できる「最適領域」が存在することが明らかになった。この結果は、従来の古典的な接着理論では説明できない挙動であり、軟質材料の接着・剥離には速度依存性を伴う別の物理過程が関与することを示している。今回の発見は、ハイドロゲルなどの軟質材料の力学的挙動に関する理解を深めるとともに、医療用接着材やソフトマテリアルの設計、剥離制御などへの応用につながる可能性がある。

Three-panel figure showing soft-material adhesion experiments: a microscope image of a probe contacting a surface, fluorescence images of the contact area, and a graph showing pull-off force versus retraction speed, with stress relaxation and dynamic bond effects labeled.

<関連情報>

ハイドロゲルの非単調な速度依存性接着 Nonmonotonic rate-dependent adhesion of hydrogels

Dongjing He, Jiahe Huang, and Yuhang Hu
Proceedings of the National Academy of Sciences  Published:March 18, 2026
DOI:https://doi.org/10.1073/pnas.2536311123

Abstract

Hydrogel adhesion underlies a wide range of biological and engineering functions, yet its rate dependence remains poorly understood. Classical adhesive systems exhibit a monotonic increase in adhesion strength with separation rate, a behavior attributed to bond stress relaxation. Here, we show that hydrogels fundamentally deviate from this paradigm. Using atomic force microscopy-based indentation over six orders of magnitude in retraction rate, we find that the pull-off force first decreases and then increases, revealing a distinctly nonmonotonic rate dependence in hydrogels. To explain this behavior, we develop a quantitative model that couples the deformation of the hydrogel with a rate-dependent traction carried by interfacial bonds with distinct association and dissociation kinetics. The model reproduces the full pull-off force spectrum exhibiting the nonmonotonic behavior and predicts the evolution of the contact radius during detachment. In situ confocal microscopy measurements of contact-area dynamics confirm these predictions, providing independent validation of the kinetic mechanism. Together, the experiments and theory reveal that hydrogel adhesion is governed by a competition between time-dependent bond formation, which strengthens adhesion at slow rates, and limited bond relaxation, which enhances traction at fast rates. This interplay produces a broad intermediate regime in which reduced contact time suppresses bond buildup and weakens adhesion. Our findings identify a previously unrecognized adhesion regime in polymeric materials and provide a unified framework for understanding and designing hydrogel interfaces whose performance depends sensitively on rate, contact history, and interfacial bonding kinetics.

0500化学一般
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