Chen Zhaoxian, Li Zhengwei, Weng Jingkai, Liang Bin, Lu Yanqing, Cheng Jianchun, Alù Andrea
Collaborative Innovation Center of Advanced Microstructures, Key Laboratory of Modern Acoustics of Ministry of Education, Institute of Acoustics, Department of Physics, Nanjing University, Nanjing 210093, China; College of Engineering and Applied Sciences, Nanjing University, Nanjing 210093, China.
Collaborative Innovation Center of Advanced Microstructures, Key Laboratory of Modern Acoustics of Ministry of Education, Institute of Acoustics, Department of Physics, Nanjing University, Nanjing 210093, China.
Sci Bull (Beijing). 2023 Oct 15;68(19):2164-2169. doi: 10.1016/j.scib.2023.08.013. Epub 2023 Aug 9.
Synthetic magnetism has been recently realized using spatiotemporal modulation patterns, producing non-reciprocal steering of charge-neutral particles such as photons and phonons. Here, we design and experimentally demonstrate a non-reciprocal acoustic system composed of three compact cavities interlinked with both dynamic and static couplings, in which phase-correlated modulations induce a synthetic magnetic flux that breaks time-reversal symmetry. Within the rotating wave approximation, the transport properties of the system are controlled to efficiently realize large non-reciprocal acoustic transport. By optimizing the coupling strengths and modulation phases, we achieve frequency-preserved unidirectional transport with 45-dB isolation ratio and 0.85 forward transmission. Our results open to the realization of acoustic non-reciprocal technologies with high efficiency and large isolation, and offer a route towards Floquet topological insulators for sound.
最近,利用时空调制模式实现了合成磁性,从而实现了对诸如光子和声子等电荷中性粒子的非互易操控。在此,我们设计并通过实验展示了一种由三个紧凑腔室组成的非互易声学系统,这些腔室通过动态和静态耦合相互连接,其中相位相关调制会诱导出打破时间反演对称性的合成磁通量。在旋转波近似下,对系统的传输特性进行控制,以有效地实现大的非互易声传输。通过优化耦合强度和调制相位,我们实现了具有45分贝隔离比和0.85正向传输的频率保持单向传输。我们的结果为高效且大隔离的声学非互易技术的实现开辟了道路,并为声音的弗洛凯拓扑绝缘体提供了一条途径。