Sun Rachel, Lem Jet, Kai Yun, DeLima Washington, Portela Carlos M
Department of Mechanical Engineering, Massachusetts Institute of Technology, 77 Massachusetts Ave., Cambridge, MA 02139, USA.
Institute for Soldier Nanotechnologies, Massachusetts Institute of Technology, 500 Technology Square, Cambridge, MA 02139, USA.
Sci Adv. 2024 Nov 8;10(45):eadq6425. doi: 10.1126/sciadv.adq6425. Epub 2024 Nov 6.
The quasi-static properties of micro-architected (meta)materials have been extensively studied over the past decade, but their dynamic responses, especially in acoustic metamaterials with engineered wave propagation behavior, represent a new frontier. However, challenges in miniaturizing and characterizing acoustic metamaterials in high-frequency (megahertz) regimes have hindered progress toward experimentally implementing ultrasonic-wave control. Here, we present an inertia design framework based on positioning microspheres to tune responses of 3D microscale metamaterials. We demonstrate tunable quasi-static stiffness by up to 75% and dynamic longitudinal-wave velocities by up to 25% while maintaining identical material density. Using noncontact laser-based dynamic experiments of tunable elastodynamic properties and numerical demonstrations of spatio-temporal ultrasound wave propagation, we explore the tunable static and elastodynamic property relation. This design framework expands the quasi-static and dynamic metamaterial property space through simple geometric changes, enabling facile design and fabrication of metamaterials for applications in medical ultrasound and analog computing.
在过去十年中,微结构(超)材料的准静态特性得到了广泛研究,但其动态响应,特别是在具有工程化波传播行为的声学超材料中,仍是一个新的前沿领域。然而,在高频(兆赫兹)范围内对声学超材料进行小型化和表征的挑战阻碍了实现超声波控制的实验进展。在此,我们提出了一种基于定位微球来调节三维微观超材料响应的惯性设计框架。我们展示了在保持材料密度不变的情况下,准静态刚度可调高达75%,动态纵波速度可调高达25%。通过基于非接触激光的可调弹性动力学特性动态实验以及时空超声波传播的数值演示,我们探索了可调静态和弹性动力学特性之间的关系。该设计框架通过简单的几何变化扩展了准静态和动态超材料特性空间,为医疗超声和模拟计算应用的超材料设计和制造提供了便利。