ナノ粒子の組織構造観察技術により新材料開発を加速(Researchers capture nanoparticle organizations to forge new materials)

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2025-06-18 ミシガン大学

ミシガン大学の研究チームは、液相電子顕微鏡を用いて自己集合ナノ粒子内の振動エネルギー(フォノン)の動きを初めて可視化し、その構造と力学特性の関係を解明した。金ナノ粒子が“ナノばね”のように振る舞う様子を観察し、音響・衝撃制御に優れた新素材設計の基礎モデルを構築。機械学習とシミュレーションにより、再構成可能なメタマテリアルの逆設計も可能に。将来的に衝撃吸収材や高性能センサーへの応用が期待される。

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自己組織化ナノ粒子格子におけるナノスケールフォノンダイナミクス Nanoscale phonon dynamics in self-assembled nanoparticle lattices

Chang Qian,Ethan Stanifer,Zhan Ma,Lehan Yao,Binbin Luo,Chang Liu,Jiahui Li,Puquan Pan,Wenxiao Pan,Xiaoming Mao & Qian Chen
Nature Materials  Published:17 June 2025
DOI:https://doi.org/10.1038/s41563-025-02253-3

ナノ粒子の組織構造観察技術により新材料開発を加速(Researchers capture nanoparticle organizations to forge new materials)

Abstract

Geometry and topology endow mechanical frames with unusual properties from shape morphing to phonon wave manipulation, enabling emerging technologies. Despite important advances in macroscopic frames, the realization and phonon imaging of nanoscale mechanical metamaterials has remained challenging. Here we extend the principle of topologically engineered mechanical frames to self-assembled nanoparticle lattices, resolving phonon dynamics using liquid-phase transmission electron microscopy. The vibrations of nanoparticles in Maxwell lattices are used to measure properties that have been difficult to obtain, such as phonon band structures, nanoscale spring constants and nonlinear lattice deformation paths. Studies of five different lattices reveal that these properties are modulated by nanoscale colloidal interactions. Our discrete mechanical model and simulations capture these interactions and the critical role of effects beyond nearest neighbours, bridging mechanical metamaterials with nanoparticle self-assembly. Our study provides opportunities for understanding and manufacturing self-assembled nanostructures for phonon manipulation, offering solution processability, transformability and emergent functions at underexplored scales of length, frequency and energy density.

1700応用理学一般
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