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首页> 外文期刊>Physical review.B.Condensed matter and materials physics >Abnormal topological refraction into free medium at subwavelength scale in valley phononic crystal plates
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Abnormal topological refraction into free medium at subwavelength scale in valley phononic crystal plates

机译:谷声晶板中亚波长刻度的异常拓扑折射

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In this work we propose a topological valley phononic crystal plate and we extensively investigate the refraction of valley modes into the surrounding homogeneous medium. This phononic crystal includes two sublattices of resonators (A and B) modeled by mass-spring systems. We show that two edge states confined at the AB/BA and BA/AB type domain walls exhibit different symmetries in physical space and energy peaks in the Fourier space. As a result, distinct refraction behaviors, especially through an armchair cut edge, are observed. On the other hand, the decay depth of these localized topological modes, which is found to be solely determined by the relative resonant strength between the scatterers, significantly affects the refraction patterns. More interestingly, the outgoing traveling wave through a zigzag interface becomes evanescent when operating at deep subwavelength scale. This is realized by tuning the average resonant strength. We show that the evanescent modes only exist along a particular type of outlet edge and that they can couple with both topological interface states. We also present a near-ideal monopole and a dipole emitter based on our phononic structure.
机译:在这项工作中,我们提出了一种拓扑谷声晶板,我们广泛地研究了谷型模式的折射到周围的均匀介质中。该声波晶体包括由Mass-Spring系统建模的两个谐振器(A和B)的子图示。我们表明,在AB / BA和BA / AB型畴壁上限制的两个边缘状态在傅里叶空间中的物理空间和能量峰值中表现出不同的对称性。结果,观察到不同的折射行为,尤其是通过扶手椅切割边缘。另一方面,这些局部拓扑模式的衰减深度被发现仅通过散射体之间的相对谐振强度确定,显着影响折射图案。更有趣的是,在深度亚波长刻度操作时,通过Z字形接口的传出波浪变为渐变。通过调整平均共振强度来实现这一点。我们表明渐逝模式沿着特定类型的出口边缘存在,并且它们可以与拓扑接口状态连接。我们还基于我们的声子结构呈现近乎理想的单极和偶极发射器。

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  • 来源
    《Physical review.B.Condensed matter and materials physics》 |2021年第18期|184303.1-184303.11|共11页
  • 作者单位

    Department of Astronautic Science and Mechanics Harbin Institute of Technology Harbin Heilongjiang 150001 China Sorbonne Universite UPMC Universite Paris 06 (INSP-UMR CNRS 7588) 4 place Jussieu 75005 Paris France;

    Department of Astronautic Science and Mechanics Harbin Institute of Technology Harbin Heilongjiang 150001 China;

    Sorbonne Universite UPMC Universite Paris 06 (INSP-UMR CNRS 7588) 4 place Jussieu 75005 Paris France;

    Institut d'EIectronique de Microelectonique et de Nanotechnologie UMR CNRS 8520 Departement de Physique Universite de Lille 59650 Villeneuve d'Ascq France;

    Department of Physics Hong Kong Baptist University Kowloon Tong Hong Kong China;

    School of Physics and Optoelectronic Technology South China University of Technology Guangzhou Guangdong 510640 China;

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