Department of Physics, South China University of Technology, Guangzhou 510640, China.
Division of Computer, Electrical and Mathematical Sciences and Engineering, King Abdullah University of Science and Technology (KAUST), Thuwal 23955-6900, Saudi Arabia.
Sci Rep. 2016 Sep 2;6:32752. doi: 10.1038/srep32752.
We propose a simple two-dimensional acoustic crystal to realize topologically protected edge states for acoustic waves. The acoustic crystal is composed of a triangular array of core-shell cylinders embedded in a water host. By utilizing the point group symmetry of two doubly degenerate eigenstates at the Γ point, we can construct pseudo-time-reversal symmetry as well as pseudo-spin states in this classical system. We develop an effective Hamiltonian for the associated dispersion bands around the Brillouin zone center, and find the inherent link between the band inversion and the topological phase transition. With numerical simulations, we unambiguously demonstrate the unidirectional propagation of acoustic edge states along the interface between a topologically nontrivial acoustic crystal and a trivial one, and the robustness of the edge states against defects with sharp bends. Our work provides a new design paradigm for manipulating and transporting acoustic waves in a topologically protected manner. Technological applications and devices based on our design are expected in various frequency ranges of interest, spanning from infrasound to ultrasound.
我们提出了一种简单的二维声子晶体,以实现声波的拓扑保护边缘态。该声子晶体由嵌入在水中的核壳圆柱三角形阵列组成。通过利用Γ点两个简并本征态的点群对称性,我们可以在这个经典系统中构建赝时间反转对称性和赝自旋态。我们针对布里渊区中心附近的相关色散带开发了一个有效的哈密顿量,并发现了带反转和拓扑相变之间的内在联系。通过数值模拟,我们明确地证明了声子边缘态沿着拓扑非平凡声子晶体和平凡声子晶体之间的界面的单向传播,以及边缘态对具有尖锐弯曲缺陷的鲁棒性。我们的工作为以拓扑保护的方式操纵和传输声波提供了一种新的设计范例。预计基于我们设计的技术应用和设备将在从次声到超声的各种感兴趣的频率范围内得到应用。