论文标题

主动编码压电元信息

Active Coding Piezoelectric Metasurfaces

论文作者

Li, Zhaoxi, Fei, Chunlong, Yang, Shenghui, Hou, Chenxue, Zhao, Jianxin, Li, Yi, Zheng, Chenxi, Wu, Heping, Quan, Yi, Zhao, Tianlong, Chen, Dongdong, Li, Di, Niu, Gang, Ren, Wei, Xiao, Meng, Yang, Yintang

论文摘要

声波的操纵在广泛的应用中起着重要作用。当前,声波操纵通常依赖于声学元面或相分支换能器。元信息元素的元素是针对目标频率设计和优化的,从而限制了其带宽。具有高成本和复杂控制电路的分阶段阵列换能器通常受到控制单元的阵列大小和填充比的限制。在这项工作中,我们引入了主动编码压电元信息。展示了通常实现的声波操纵功能,例如梁转向,光束聚焦和涡流束聚焦,声学镊子;并最终实现超声成像。在此处的压电元信息上编码的信息是独立的频率,源自压电材料的极化方向,指向上或向下指向。这样的压电跨表面是由单个电极驱动的,并充当可控制的主动声源,它结合了声学元图和相位阵列传感器的优势,同时保持设备在结构上简单且紧凑。我们的编码压电元面可能会导致水下声波调制,声学镊子,生物医学成像,工业非破坏性测试和神经调节的潜在技术创新。

The manipulation of acoustic waves plays an important role in a wide range of applications. Currently, acoustic wave manipulation typically relies on either acoustic metasurfaces or phased array transducers. The elements of metasurfaces are designed and optimized for a target frequency, which thus limits their bandwidth. Phased array transducers, suffering from high-cost and complex control circuits, are usually limited by the array size and the filling ratio of the control units. In this work, we introduce active coding piezoelectric metasurfaces; demonstrate commonly implemented acoustic wave manipulation functionalities such as beam steering, beam focusing and vortex beam focusing, acoustic tweezers; and eventually realize ultrasound imaging. The information coded on the piezoelectric metasurfaces herein is frequency independent and originates from the polarization directions, pointing either up or down, of the piezoelectric materials. Such a piezoelectric metasurface is driven by a single electrode and acts as a controllable active sound source, which combines the advantages of acoustic metasurfaces and phased array transducers while keeping the devices structurally simple and compact. Our coding piezoelectric metasurfaces can lead to potential technological innovations in underwater acoustic wave modulation, acoustic tweezers, biomedical imaging, industrial non-destructive testing and neural regulation.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源