Ronceray Nathan, Spina Massimo, Chou Vanessa Hui Yin, Lim Chwee Teck, Geim Andre K, Garaj Slaven
Department of Physics, National University of Singapore, Singapore, 117551, Singapore.
Centre for Advanced 2D Materials, National University of Singapore, Singapore, 117542, Singapore.
Nat Commun. 2024 Jan 2;15(1):185. doi: 10.1038/s41467-023-44200-3.
Biological nanostructures change their shape and function in response to external stimuli, and significant efforts have been made to design artificial biomimicking devices operating on similar principles. In this work we demonstrate a programmable nanofluidic switch, driven by elastocapillarity, and based on nanochannels built from layered two-dimensional nanomaterials possessing atomically smooth surfaces and exceptional mechanical properties. We explore operational modes of the nanoswitch and develop a theoretical framework to explain the phenomenon. By predicting the switching-reversibility phase diagram-based on material, interfacial and wetting properties, as well as the geometry of the nanofluidic circuit-we rationally design switchable nano-capsules capable of enclosing zeptoliter volumes of liquid, as small as the volumes enclosed in viruses. The nanoswitch will find useful application as an active element in integrated nanofluidic circuitry and could be used to explore nanoconfined chemistry and biochemistry, or be incorporated into shape-programmable materials.
生物纳米结构会根据外部刺激改变其形状和功能,并且人们已经做出了巨大努力来设计基于类似原理运行的人工仿生装置。在这项工作中,我们展示了一种由弹性毛细作用驱动的可编程纳米流体开关,该开关基于由具有原子级光滑表面和卓越机械性能的层状二维纳米材料构建的纳米通道。我们探索了纳米开关的操作模式,并建立了一个理论框架来解释这一现象。通过基于材料、界面和润湿性以及纳米流体电路的几何形状预测开关可逆性相图,我们合理设计了能够包裹zeptoliter体积液体(小至病毒所包裹的体积)的可切换纳米胶囊。该纳米开关作为集成纳米流体电路中的有源元件将有实用价值,可用于探索纳米受限化学和生物化学,或被纳入形状可编程材料中。