论文标题
有效,高纯度,稳健的声音频率转换与线性跨表面
Efficient, High-purity, Robust Sound Frequency Conversion with a Linear Metasurface
论文作者
论文摘要
材料非线性的内在限制不可避免地会导致较差的模式纯度,转化效率和在光学和声学中生成的谐波的实时重构性。旋转多普勒效应为我们提供了一个直观的范式,以移动线性系统中的频率,这需要通过在波传播时螺旋相变为螺旋相变的促进。在这里,我们在数值和实验上呈现一个旋转的线性涡流元面,并在可听见的声音频率低至3000 Hz的声音频率下达到近距离模式纯度(以上95%)和转换效率(高于65%)。传输声音的拓扑电荷几乎不受旋转速度和透射率的影响,这表明在调整原位高性能频率转换时的机械鲁棒性和稳定性。这些功能使我们能够级联多个涡流元信息,以进一步扩大和多样化声频转换的程度,这些程度得到了实验验证。我们的策略朝着声学频率域上的自由轮声操作迈出了一步,并且在各种声音通信,信号处理和无接触式检测中可能会产生巨大的影响。
The intrinsic limitation of the material nonlinearity inevitably results in the poor mode purity, conversion efficiency and real-time reconfigurability of the generated harmonic waves, both in optics and acoustics. Rotational Doppler effect provides us an intuitive paradigm to shifting the frequency in a linear system, which needs to be facilitated by a spiraling phase change upon the wave propagation. Here we numerically and experimentally present a rotating linear vortex metasurface and achieve close-to-unity mode purity (above 95%) and conversion efficiency (above 65%) in audible sound frequency as low as 3000 Hz. The topological charge of the transmitted sound is almost immune from the rotational speed and transmissivity, demonstrating the mechanical robustness and stability in adjusting the high-performance frequency conversion in situ. These features enable us to cascade multiple vortex metasurfaces to further enlarge and diversify the extent of sound frequency conversion, which are experimentally verified. Our strategy takes a step further towards the freewheeling sound manipulation at acoustic frequency domain, and may have far-researching impacts in various acoustic communications, signal processing, and contactless detection.