Zhao Jiajun, Ye Huapeng, Huang Kun, Chen Zhi Ning, Li Baowen, Qiu Cheng-Wei
1] Department of Electrical and Computer Engineering, National University of Singapore, Singapore 117576, Republic of Singapore [2] Department of Physics and Centre for Computational Science and Engineering, National University of Singapore, Singapore 117546, Republic of Singapore.
Department of Electrical and Computer Engineering, National University of Singapore, Singapore 117576, Republic of Singapore.
Sci Rep. 2014 Sep 1;4:6257. doi: 10.1038/srep06257.
It has a pivotal role in medical science and in industry to concentrate the acoustic energy created with piezoelectric transducers (PTs) into a specific area. However, previous researches seldom consider the focal resolution, whose focal size is much larger than one wavelength. Furthermore, there is to date no such design method of PTs that allows a large degree of freedom to achieve designed focal patterns. Here, an active and configurable planar metasurface PT prototype is proposed to manipulate the acoustic focal pattern and the focal resolution freely. By suitably optimized ring configurations of the active metasurface PT, we demonstrate the manipulation of focal patterns in acoustic far fields, such as the designed focal needle and multi foci. Our method is also able to manipulate and improve the cross-sectional focal resolution from subwavelength to the extreme case: the deep sub-diffraction-limit resolution. Via the acoustic Rayleigh-Sommerfeld diffraction integral (RSI) cum the binary particle swarm optimization (BPSO), the free manipulation of focusing properties is achieved in acoustics for the first time. Our approach may offer more initiatives where the strict control of acoustic high-energy areas is demanding.
将压电换能器(PTs)产生的声能集中到特定区域,在医学和工业领域都具有关键作用。然而,以往的研究很少考虑焦分辨率,其焦斑尺寸远大于一个波长。此外,迄今为止还没有一种PTs的设计方法能够在实现设计焦斑图案方面具有很大的自由度。在此,提出了一种有源且可配置的平面超表面PT原型,以自由操纵声焦斑图案和焦分辨率。通过对有源超表面PT的环形配置进行适当优化,我们展示了在声远场中对焦斑图案的操纵,如设计的焦针和多个焦点。我们的方法还能够将横截面焦分辨率从亚波长操纵并提高到极端情况:深度亚衍射极限分辨率。通过声瑞利 - 索末菲衍射积分(RSI)结合二进制粒子群优化(BPSO),首次在声学中实现了对焦特性的自由操纵。我们的方法可能会在对声高能区域进行严格控制的需求方面提供更多的可能性。