Recently, the topological physics in artificial crystals for classical waves has become an emerging research area. In this Letter, we propose a unique bilayer design of sonic crystals that are constructed by two layers of coupled hexagonal array of triangular scatterers. Assisted by the additional layer degree of freedom, a rich topological phase diagram is achieved by simply rotating scatterers in both layers. Under a unified theoretical framework, two kinds of valley-projected topological acoustic insulators are distinguished analytically, i.e., the layer-mixed and layer-polarized topological valley Hall phases, respectively. The theory is evidently confirmed by our numerical and experimental observations of the nontrivial edge states that propagate along the interfaces separating different topological phases. Various applications such as sound communications in integrated devices, can be anticipated by the intriguing acoustic edge states enriched by the layer information.
@article{arxiv.1802.09772,
title = {Valley Topological Phases in Bilayer Sonic Crystals},
author = {Jiuyang Lu and Chunyin Qiu and Weiyin Deng and Xueqin Huang and Feng Li and Fan Zhang and Shuqi Chen and Zhengyou Liu},
journal= {arXiv preprint arXiv:1802.09772},
year = {2018}
}