论文标题
用可调的磁性晶格反复插图弹声子
Demultiplexing infrasound phonons with tunable magnetic lattices
论文作者
论文摘要
控制伸缩信号对于从预测大气事件和地震活动到感应核爆炸的许多过程至关重要。这些波可以通过音调晶体和声学超材料来操纵。但是,在这种超低频率下,这些材料的尺寸(通常是按米的顺序)和质量(通常是在许多千克的顺序上)可能会阻碍其潜在的应用中的应用中的应用。在这里,我们利用排斥磁铁的可调节晶格来指导并根据其频率对不同的通道进行分类。我们通过将磁原子(自由浮动宏观磁盘用嵌入式磁体)限制在磁性边界中来构建晶格。通过更改限制边界,我们控制元原子的间距,因此控制其耦合电势和波传播特征的强度。作为原理的证明,我们介绍了反向声子反复传输器的第一个实验实现(即,根据其频率将超低频率引导到不同的通道中)。实现的平台可用于在相对较小的体积内操纵超低频率波,同时使用可忽略的质量。此外,元原子的自组装性质对于创建具有非线性特性的重新编程材料可能是关键。
Controlling infrasound signals is crucial to many processes ranging from predicting atmospheric events and seismic activities to sensing nuclear detonations. These waves can be manipulated through phononic crystals and acoustic metamaterials. However, at such ultra-low frequencies, the size (usually on the order of meters) and the mass (usually on the order of many kilograms) of these materials can hinder its potential applications in the infrasonic domain. Here, we utilize tunable lattices of repelling magnets to guide and sort infrasound waves into different channels based on their frequencies. We construct our lattices by confining meta-atoms (free-floating macroscopic disks with embedded magnets) within a magnetic boundary. By changing the confining boundary, we control the meta-atoms' spacing and therefore the intensity of their coupling potentials and wave propagation characteristics. As a demonstration of principle, we present the first experimental realization of an infrasound phonon demultiplexer (i.e., guiding ultra-low frequency waves into different channels based on their frequencies). The realized platform can be utilized to manipulate ultra-low frequency waves, within a relatively small volume, while utilizing negligible mass. In addition, the self-assembly nature of the meta-atoms can be key in creating re-programmable materials with exceptional nonlinear properties.