论文标题
正方形和矩形语音晶体中的声学拓扑回路
Acoustic topological circuitry in square and rectangular phononic crystals
论文作者
论文摘要
我们系统地设计了一系列的正方形和矩形音调晶体,以创建复杂的拓扑语音电路实验实现。观察到的外来拓扑转运完全依赖于必须属于正方形或矩形晶格系统的基础结构,而不是任何基于六边形的结构。选择的音调系统由周期性的方形钢棒组成,该钢筋在宽带频率范围内(〜0.5 MHz)划分了水中的声波。超声传感器发射了一个声脉冲,该声脉冲沿着域壁传播,然后遇到一个淋巴结点,声音点从中向三个出口端口朝向三个出口端口。进行数值模拟以清楚地说明高度分辨的边缘状态并证实我们的实验发现。为了完全控制能源的流动,需要电力划分和重定向设备。我们的设计提供的可调性,以及模式的拓扑鲁棒性,将导致它们同化为声学设备。
We systematically engineer a series of square and rectangular phononic crystals to create experimental realisations of complex topological phononic circuits. The exotic topological transport observed is wholly reliant upon the underlying structure which must belong to either a square or rectangular lattice system and not to any hexagonal-based structure. The phononic system chosen consists of a periodic array of square steel bars which partitions acoustic waves in water over a broadband range of frequencies (~0.5 MHz). An ultrasonic transducer launches an acoustic pulse which propagates along a domain wall, before encountering a nodal point, from which the acoustic signal partitions towards three exit ports. Numerical simulations are performed to clearly illustrate the highly resolved edge states as well as corroborate our experimental findings. To achieve complete control over the flow of energy, power division and redirection devices are required. The tunability afforded by our designs, in conjunction with the topological robustness of the modes, will result in their assimilation into acoustical devices.