论文标题
观察纳米机电语音晶体中Gigahertz拓扑山谷大厅效应
Observation of Gigahertz Topological Valley Hall Effect in Nanoelectromechanical Phononic Crystals
论文作者
论文摘要
拓扑声音提供了许多机会,可以在不反向散射的情况下在固体中传播弹性波。然而,由于缺乏有助于系统设计的纳米级成像工具,因此在低(Kilohertz至Megahertz)频率下运行的宏观系统系统中,声学拓扑超材料已被证明。在这里,我们报告了纳米机电ALN膜中Gigahertz拓扑山谷效应的实现。通过微波显微镜直接以前所未有的灵敏度和空间分辨率来直接观察到通过语音晶体传播弹性波。山谷大厅的边缘国家受到乐队拓扑的保护,在实地和动量空间中都可以生动地看到。从跨局部障碍和尖角周围的波动传输以及功率分布到多个边缘通道中可以明显看出强大的谷极化运输。我们的工作铺平了在综合声学系统中利用拓扑物理学的方法,用于微波制度中的经典和量子信息处理。
Topological phononics offers numerous opportunities in manipulating elastic waves that can propagate in solids without being backscattered. Due to the lack of nanoscale imaging tools that aid the system design, however, acoustic topological metamaterials have been mostly demonstrated in macroscale systems operating at low (kilohertz to megahertz) frequencies. Here, we report the realization of gigahertz topological valley Hall effect in nanoelectromechanical AlN membranes. Propagation of elastic wave through phononic crystals is directly visualized by microwave microscopy with unprecedented sensitivity and spatial resolution. The valley Hall edge states, protected by band topology, are vividly seen in both real- and momentum-space. The robust valley-polarized transport is evident from the wave transmission across local disorder and around sharp corners, as well as the power distribution into multiple edge channels. Our work paves the way to exploit topological physics in integrated acousto-electronic systems for classical and quantum information processing in the microwave regime.