| Literature DB >> 27305973 |
Xue Jiang1,2, Bin Liang1,2, Xin-Ye Zou1,2,3, Jing Yang1,2, Lei-Lei Yin4, Jun Yang5, Jian-Chun Cheng1,2.
Abstract
We theoretically design and numerically demonstrate an acoustic one-way metasurface, which is a planar and acoustically subwavelength layer behaving like a nearly-reflectionless surface with arbitrary wave-steering capability for incident wave impinging on one side, while virtually blocking the reversed wave. The underlying mechanism is based on an asymmetric phase modulation by coupling a phase array and a near-zero-index medium. We exemplify a metastructure-based implementation by combining the hybrid metastuctures and labyrinthine structures. Moreover, the performance of the proposed implementation is demonstrated via three distinct phenomena of anomalous refraction, wave splitting and conversion of propagation wave to surface wave. Our findings may offer more possibilities for sound manipulation and improve the application potential of acoustic artificial devices in situations such as ultrasonic imaging and therapy.Entities:
Year: 2016 PMID: 27305973 PMCID: PMC4910075 DOI: 10.1038/srep28023
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(a) Schematic of the proposed AOM design which is a combination of PA and ZIM as shown in the inset. (b) Schematic of the asymmetric phase manipulation of the AOM in PD and ND cases. Inset: a zoom-in of a part of the AOM.
Figure 2The hybrid metastructure (left part) and labyrinthine structure (right part) employed as the PA and ZIM in a particular implementation of the AOM.
Figure 3(a,d,g) The corresponding asymmetric phase profiles for realizing the anomalous refraction, wave splitter and the conversion of propagating wave into surface wave. (b,c,e,f) Acoustic pressure fields for the anomalous refraction and splitting acoustic wave in PD and ND cases, respectively. (h,i) Sound pressure levels for converting propagating wave into surface wave in PD and ND cases. The black arrows indicate the incident directions, the green and red arrows respectively denote the theoretical propagation direction for PD and ND cases.